{"id":4882,"date":"2021-12-16T11:28:48","date_gmt":"2021-12-16T03:28:48","guid":{"rendered":"http:\/\/43.135.177.8\/?p=4882"},"modified":"2021-12-16T11:29:09","modified_gmt":"2021-12-16T03:29:09","slug":"development-of-a-sticker-sealed-microfluidic-device-for-in-situ-analytical-measurements-using-synchrotron-radiation","status":"publish","type":"post","link":"https:\/\/whmicro.com\/?p=4882","title":{"rendered":"Development of a sticker sealed microfluidic device for in situ analytical measurements using synchrotron radiation"},"content":{"rendered":"<p>[vc_row rt_row_background_width=&#8221;default&#8221; rt_row_style=&#8221;default-style&#8221; rt_row_borders=&#8221;&#8221; rt_row_paddings=&#8221;true&#8221; rt_bg_effect=&#8221;classic&#8221; rt_bg_image_repeat=&#8221;repeat&#8221; rt_bg_size=&#8221;cover&#8221; rt_bg_position=&#8221;right top&#8221; rt_bg_attachment=&#8221;scroll&#8221; rt_bg_video_format=&#8221;self-hosted&#8221;][vc_column width=&#8221;4\/5&#8243; rt_wrp_col_paddings=&#8221;false&#8221; rt_border_top=&#8221;&#8221; rt_border_bottom=&#8221;&#8221; rt_border_left=&#8221;&#8221; rt_border_right=&#8221;&#8221; rt_border_top_mobile=&#8221;&#8221; rt_border_bottom_mobile=&#8221;&#8221; rt_border_left_mobile=&#8221;&#8221; rt_border_right_mobile=&#8221;&#8221; rt_bg_image_repeat=&#8221;repeat&#8221; rt_bg_size=&#8221;auto auto&#8221; rt_bg_position=&#8221;right top&#8221; rt_bg_attachment=&#8221;scroll&#8221;][vc_column_text]<\/p>\n<section data-title=\"Introduction\">\n<div id=\"Sec1-section\" class=\"c-article-section\">\n<h2 id=\"Sec1\" class=\"c-article-section__title js-section-title js-c-reading-companion-sections-item\">Introduction<\/h2>\n<div id=\"Sec1-content\" class=\"c-article-section__content\">\n<p>Microfluidic devices operate with small amounts of samples through micrometer and\/or sub-micrometer channels<sup><a id=\"ref-link-section-d46674302e570\" title=\"Whitesides, G. M. The origins and the future of microfluidics. Nature 442, 368\u2013373. https:\/\/doi.org\/10.1038\/nature05058 (2006).\" href=\"https:\/\/www.nature.com\/articles\/s41598-021-02928-2#ref-CR1\" data-track=\"click\" data-track-action=\"reference anchor\" data-track-label=\"link\" data-test=\"citation-ref\" aria-label=\"Reference 1\">1<\/a><\/sup>. As the main characteristics, these devices show reduced size, low weight, and high throughput. These characteristics have attracted tremendous and widespread attention by the synchrotron community<sup><a id=\"ref-link-section-d46674302e574\" title=\"Chaussavoine, I. et al. The microfluidic laboratory at Synchrotron SOLEIL. J. Synchrotron Radiat. 27, 230\u2013237. https:\/\/doi.org\/10.1107\/S1600577519015042 (2020).\" href=\"https:\/\/www.nature.com\/articles\/s41598-021-02928-2#ref-CR2\" data-track=\"click\" data-track-action=\"reference anchor\" data-track-label=\"link\" data-test=\"citation-ref\" aria-label=\"Reference 2\">2<\/a>,<a id=\"ref-link-section-d46674302e577\" title=\"Lange, T., Charton, S., Bizien, T., Testard, F. &amp; Malloggi, F. Oste+ for in situ saxs analysis with droplet microfluidic devices. Lab Chip 20, 2990\u20133000. https:\/\/doi.org\/10.1039\/D0LC00454E (2020).\" href=\"https:\/\/www.nature.com\/articles\/s41598-021-02928-2#ref-CR3\" data-track=\"click\" data-track-action=\"reference anchor\" data-track-label=\"link\" data-test=\"citation-ref\" aria-label=\"Reference 3\">3<\/a><\/sup>\u00a0interested in compatible instrumentation for\u00a0<i>in situ<\/i>\u00a0and\u00a0<i>in vivo<\/i>\u00a0experiments. To date, reported applications of these devices on synchrotrons, involving studies on protein crystallography<sup><a id=\"ref-link-section-d46674302e587\" title=\"Loutherback, K., Birarda, G., Chen, L. &amp; Holman, H.-Y.N. Microfluidic approaches to synchrotron radiation-based fourier transform infrared (sr-ftir) spectral microscopy of living biosystems. Protein Peptide Lett. 23, 273\u2013282. https:\/\/doi.org\/10.2174\/0929866523666160106154035 (2016).\" href=\"https:\/\/www.nature.com\/articles\/s41598-021-02928-2#ref-CR4\" data-track=\"click\" data-track-action=\"reference anchor\" data-track-label=\"link\" data-test=\"citation-ref\" aria-label=\"Reference 4\">4<\/a>,<a id=\"ref-link-section-d46674302e590\" title=\"Brennich, M. E. et al. Dynamics of intermediate filament assembly followed in micro-flow by small angle x-ray scattering. Lab Chip 11, 708\u2013716. https:\/\/doi.org\/10.1039\/C0LC00319K (2011).\" href=\"https:\/\/www.nature.com\/articles\/s41598-021-02928-2#ref-CR5\" data-track=\"click\" data-track-action=\"reference anchor\" data-track-label=\"link\" data-test=\"citation-ref\" aria-label=\"Reference 5\">5<\/a><\/sup>, advanced materials<sup><a id=\"ref-link-section-d46674302e595\" title=\"Levenstein, M. A. et al. Droplet microfluidics xrd identifies effective nucleating agents for calcium carbonate. Adv. Funct. Mater. 29, 1808172. https:\/\/doi.org\/10.1002\/adfm.201808172 (2019).\" href=\"https:\/\/www.nature.com\/articles\/s41598-021-02928-2#ref-CR6\" data-track=\"click\" data-track-action=\"reference anchor\" data-track-label=\"link\" data-test=\"citation-ref\" aria-label=\"Reference 6\">6<\/a><\/sup>, electrochemistry<sup><a id=\"ref-link-section-d46674302e599\" title=\"Kwon, G. et al. Microfluidic electrochemical cell for in situ structural characterization of amorphous thin-film catalysts using high-energy X-ray scattering. J. Synchrotron Radiat. 26, 1600\u20131611. https:\/\/doi.org\/10.1107\/S1600577519007240 (2019).\" href=\"https:\/\/www.nature.com\/articles\/s41598-021-02928-2#ref-CR7\" data-track=\"click\" data-track-action=\"reference anchor\" data-track-label=\"link\" data-test=\"citation-ref\" aria-label=\"Reference 7\">7<\/a>,<a id=\"ref-link-section-d46674302e602\" title=\"Lin, F. et al. Synchrotron x-ray analytical techniques for studying materials electrochemistry in rechargeable batteries. Chem. Rev. 117, 13123\u201313186. https:\/\/doi.org\/10.1021\/acs.chemrev.7b00007 (2017).\" href=\"https:\/\/www.nature.com\/articles\/s41598-021-02928-2#ref-CR8\" data-track=\"click\" data-track-action=\"reference anchor\" data-track-label=\"link\" data-test=\"citation-ref\" aria-label=\"Reference 8\">8<\/a><\/sup>, catalysis<sup><a id=\"ref-link-section-d46674302e606\" title=\"Li, Y. et\u00a0al. Real-time spectroscopic monitoring of photocatalytic activity promoted by graphene in a microfluidic reactor. Sci. Rep.6, https:\/\/doi.org\/10.1038\/srep28803 (2016).\" href=\"https:\/\/www.nature.com\/articles\/s41598-021-02928-2#ref-CR9\" data-track=\"click\" data-track-action=\"reference anchor\" data-track-label=\"link\" data-test=\"citation-ref\">9<\/a>,<a id=\"ref-link-section-d46674302e606_1\" title=\"Solsona, M. et al. Microfluidics and catalyst particles. Lab Chip 19, 3575\u20133601. https:\/\/doi.org\/10.1039\/c9lc00318e (2019).\" href=\"https:\/\/www.nature.com\/articles\/s41598-021-02928-2#ref-CR10\" data-track=\"click\" data-track-action=\"reference anchor\" data-track-label=\"link\" data-test=\"citation-ref\">10<\/a>,<a id=\"ref-link-section-d46674302e609\" title=\"Yang, X. et al. Mechanistic insights into electrochemical nitrogen reduction reaction on vanadium nitride nanoparticles. J. Am. Chem. Soc. 140, 13387\u201313391. https:\/\/doi.org\/10.1021\/jacs.8b08379 (2018) (PMID: 30244579).\" href=\"https:\/\/www.nature.com\/articles\/s41598-021-02928-2#ref-CR11\" data-track=\"click\" data-track-action=\"reference anchor\" data-track-label=\"link\" data-test=\"citation-ref\" aria-label=\"Reference 11\">11<\/a><\/sup>,\u00a0<i>in vivo<\/i>\u00a0experiments (eukaryotic and bacteria cells)<sup><a id=\"ref-link-section-d46674302e616\" title=\"Levenstein, M. A. et al. Droplet microfluidics xrd identifies effective nucleating agents for calcium carbonate. Adv. Funct. Mater. 29, 1808172. https:\/\/doi.org\/10.1002\/adfm.201808172 (2019).\" href=\"https:\/\/www.nature.com\/articles\/s41598-021-02928-2#ref-CR6\" data-track=\"click\" data-track-action=\"reference anchor\" data-track-label=\"link\" data-test=\"citation-ref\" aria-label=\"Reference 6\">6<\/a>,<a id=\"ref-link-section-d46674302e619\" title=\"Holman, H.-Y.N. et al. Real-time chemical imaging of bacterial activity in biofilms using open-channel microfluidics and synchrotron ftir spectromicroscopy. Anal. Chem. 81, 8564\u20138570. https:\/\/doi.org\/10.1021\/ac9015424 (2009) (PMID: 19775125).\" href=\"https:\/\/www.nature.com\/articles\/s41598-021-02928-2#ref-CR12\" data-track=\"click\" data-track-action=\"reference anchor\" data-track-label=\"link\" data-test=\"citation-ref\" aria-label=\"Reference 12\">12<\/a>,<a id=\"ref-link-section-d46674302e622\" title=\"Weinhausen, B. &amp; K\u00f6ster, S. Microfluidic devices for x-ray studies on hydrated cells. Lab Chip 13, 212\u2013215. https:\/\/doi.org\/10.1039\/C2LC41014A (2013).\" href=\"https:\/\/www.nature.com\/articles\/s41598-021-02928-2#ref-CR13\" data-track=\"click\" data-track-action=\"reference anchor\" data-track-label=\"link\" data-test=\"citation-ref\" aria-label=\"Reference 13\">13<\/a><\/sup>, established a paramount experimental contribution for drawing a picture of these complexes systems, providing precious information about electronic, structural, and chemical properties in real-time,\u00a0<i>in situ<\/i>\u00a0and\/or operando. However, developing a small, versatile, and compact microfluidic device able to operate in synchrotron beamlines, especially at nanoprobes where the X-ray beam size is only hundreds of nanometers, has remained a challenge due to sample environment requirements. Arguably, limits should be established on such devices. It is crucial to define what is the good compromise between the selected material and the reliability of the microfabrication process when the device is to be applied in experiments that cover a wide window of the electromagnetic spectrum (X-rays, Infrared or visible light)<sup><a id=\"ref-link-section-d46674302e630\" title=\"Ghazal, A. et al. Recent advances in x-ray compatible microfluidics for applications in soft materials and life sciences. Lab Chip 16, 4263\u20134295. https:\/\/doi.org\/10.1039\/c6lc00888g (2016).\" href=\"https:\/\/www.nature.com\/articles\/s41598-021-02928-2#ref-CR14\" data-track=\"click\" data-track-action=\"reference anchor\" data-track-label=\"link\" data-test=\"citation-ref\" aria-label=\"Reference 14\">14<\/a><\/sup>.<\/p>\n<p>In the last two decades, poly(dimethylsiloxane), commonly called PDMS (an elastomer), has been the most applied material as substrate and sealing layers in microfluidic devices<sup><a id=\"ref-link-section-d46674302e637\" title=\"Friend, J. &amp; Yeo, L. Fabrication of microfluidic devices using polydimethylsiloxane. Biomicrofluidics 4, 026502. https:\/\/doi.org\/10.1063\/1.3259624 (2010).\" href=\"https:\/\/www.nature.com\/articles\/s41598-021-02928-2#ref-CR15\" data-track=\"click\" data-track-action=\"reference anchor\" data-track-label=\"link\" data-test=\"citation-ref\">15<\/a>,<a id=\"ref-link-section-d46674302e637_1\" title=\"Temiz, Y., Lovchik, R. D., Kaigala, G. V. &amp; Delamarche, E. Lab-on-a-chip devices: How to close and plug the lab?. Microelectron. Eng. 132, 156\u2013175. https:\/\/doi.org\/10.1016\/j.mee.2014.10.013 (2015).\" href=\"https:\/\/www.nature.com\/articles\/s41598-021-02928-2#ref-CR16\" data-track=\"click\" data-track-action=\"reference anchor\" data-track-label=\"link\" data-test=\"citation-ref\">16<\/a>,<a id=\"ref-link-section-d46674302e640\" title=\"Duffy, D. C., McDonald, J. C., Schueller, O. J. A. &amp; Whitesides, G. M. Rapid prototyping of microfluidic systems in poly(dimethylsiloxane). Anal. Chem. 70, 4974\u20134984. https:\/\/doi.org\/10.1021\/ac980656z (1998).\" href=\"https:\/\/www.nature.com\/articles\/s41598-021-02928-2#ref-CR17\" data-track=\"click\" data-track-action=\"reference anchor\" data-track-label=\"link\" data-test=\"citation-ref\" aria-label=\"Reference 17\">17<\/a><\/sup>\u00a0due to its remarkable physical and chemical properties such as biocompatibility, flexibility, transparency, and low toxicity<sup><a id=\"ref-link-section-d46674302e644\" title=\"Whitesides, G. M. The origins and the future of microfluidics. Nature 442, 368\u2013373. https:\/\/doi.org\/10.1038\/nature05058 (2006).\" href=\"https:\/\/www.nature.com\/articles\/s41598-021-02928-2#ref-CR1\" data-track=\"click\" data-track-action=\"reference anchor\" data-track-label=\"link\" data-test=\"citation-ref\" aria-label=\"Reference 1\">1<\/a>,<a id=\"ref-link-section-d46674302e647\" title=\"Shiroma, L. S. et al. High adhesion strength and hybrid irreversible\/reversible full-pdms microfluidic chips. Anal. Chim. Acta 951, 116\u2013123. https:\/\/doi.org\/10.1016\/j.aca.2016.11.048 (2017).\" href=\"https:\/\/www.nature.com\/articles\/s41598-021-02928-2#ref-CR18\" data-track=\"click\" data-track-action=\"reference anchor\" data-track-label=\"link\" data-test=\"citation-ref\" aria-label=\"Reference 18\">18<\/a>,<a id=\"ref-link-section-d46674302e650\" title=\"Abate, A. R., Lee, D., Do, T., Holtze, C. &amp; Weitz, D. A. Glass coating for pdms microfluidic channels by sol-gel methods. Lab Chip 8, 516\u2013518. https:\/\/doi.org\/10.1039\/B800001H (2008).\" href=\"https:\/\/www.nature.com\/articles\/s41598-021-02928-2#ref-CR19\" data-track=\"click\" data-track-action=\"reference anchor\" data-track-label=\"link\" data-test=\"citation-ref\" aria-label=\"Reference 19\">19<\/a><\/sup>. Nevertheless, PDMS presents some disadvantages that should be considered: it is permeable to small molecules due to its porosity, which can affect the devices throughput<sup><a id=\"ref-link-section-d46674302e654\" title=\"Wang, Y. et\u00a0al. Recent progresses in microfabricating perfluorinated polymers (teflons) and the associated new applications in microfluidics. Microphysiological Syst.1, 1\u20131, https:\/\/doi.org\/10.21037\/mps.2018.08.02 (2018).\" href=\"https:\/\/www.nature.com\/articles\/s41598-021-02928-2#ref-CR20\" data-track=\"click\" data-track-action=\"reference anchor\" data-track-label=\"link\" data-test=\"citation-ref\" aria-label=\"Reference 20\">20<\/a><\/sup>, and it shows low chemical resistance to many organic solvents<sup><a id=\"ref-link-section-d46674302e658\" title=\"Shiroma, L. S. et al. Self-regenerating and hybrid irreversible\/reversible PDMS microfluidic devices. Sci. Rep. 6, 26032. https:\/\/doi.org\/10.1038\/srep26032 (2016).\" href=\"https:\/\/www.nature.com\/articles\/s41598-021-02928-2#ref-CR21\" data-track=\"click\" data-track-action=\"reference anchor\" data-track-label=\"link\" data-test=\"citation-ref\" aria-label=\"Reference 21\">21<\/a><\/sup>. Hence, this elastomer can lead to non-accurate results in biological assays and it is restricted to analyses in aqueous media. Similar limitations are also found in poly(methyl methacrylate) (PMMA), another popular polymer substrate for the production of microfluidic chips. In addition, PDMS devices might reach millimeters of thickness, which is non-compatible with X-rays measurements due to the lower transmission coefficient for X-rays when compared to commonly applied polymers in microfluidic. For example, a millimeter thick cyclic olefin copolymer (COC) based device attenuates, at 12.4 keV, seven-fold less than PDMS<sup><a id=\"ref-link-section-d46674302e662\" title=\"Guha, S., Perry, S. L., Pawate, A. S. &amp; Kenis, P. J. Fabrication of x-ray compatible microfluidic platforms for protein crystallization. Sens. Actuators B Chem. 174, 1\u20139. https:\/\/doi.org\/10.1016\/j.snb.2012.08.048 (2012).\" href=\"https:\/\/www.nature.com\/articles\/s41598-021-02928-2#ref-CR22\" data-track=\"click\" data-track-action=\"reference anchor\" data-track-label=\"link\" data-test=\"citation-ref\" aria-label=\"Reference 22\">22<\/a><\/sup>, being more discrepant at lower energies. A similar proportion is observed by comparing polyester to PDMS.<\/p>\n<p>An insightful approach to minimize the drawbacks mentioned before, consists in drastically changing the sealing process by selecting a sealing layer transparent to X-rays and chemically resistant, which leads to well known polymer films such as polyester, polypropylene, polyamide, and polycarbonate (Supporting Information). In addition, few works have proposed using ultraviolet (UV) sensitive adhesive, like the Norland Optics Adhesive (NOA), as substrate or adhesion layer<sup><a id=\"ref-link-section-d46674302e669\" title=\"Bong, K.\u00a0W. et\u00a0al. Non-polydimethylsiloxane devices for oxygen-free flow lithography. Nat. Commun.3, https:\/\/doi.org\/10.1038\/ncomms1800 (2012).\" href=\"https:\/\/www.nature.com\/articles\/s41598-021-02928-2#ref-CR23\" data-track=\"click\" data-track-action=\"reference anchor\" data-track-label=\"link\" data-test=\"citation-ref\">23<\/a>,<a id=\"ref-link-section-d46674302e669_1\" title=\"Hung, L.-H., Lin, R. &amp; Lee, A. P. Rapid microfabrication of solvent-resistant biocompatible microfluidic devices. Lab Chip 8, 983\u2013987. https:\/\/doi.org\/10.1039\/B717710K (2008).\" href=\"https:\/\/www.nature.com\/articles\/s41598-021-02928-2#ref-CR24\" data-track=\"click\" data-track-action=\"reference anchor\" data-track-label=\"link\" data-test=\"citation-ref\">24<\/a>,<a id=\"ref-link-section-d46674302e669_2\" title=\"Kim, S. et al. Simple route to hydrophilic microfluidic chip fabrication using an ultraviolet (uv)-cured polymer. Adv. Funct. Mater. 17, 3493\u20133498. https:\/\/doi.org\/10.1002\/adfm.200601203 (2007).\" href=\"https:\/\/www.nature.com\/articles\/s41598-021-02928-2#ref-CR25\" data-track=\"click\" data-track-action=\"reference anchor\" data-track-label=\"link\" data-test=\"citation-ref\">25<\/a>,<a id=\"ref-link-section-d46674302e672\" title=\"Dupont, E. P., Luisier, R. &amp; Gijs, M. A. Noa 63 as a uv-curable material for fabrication of microfluidic channels with native hydrophilicity. Microelectron. Eng. 87, 1253\u20131255. https:\/\/doi.org\/10.1016\/j.mee.2009.11.084 (2010).\" href=\"https:\/\/www.nature.com\/articles\/s41598-021-02928-2#ref-CR26\" data-track=\"click\" data-track-action=\"reference anchor\" data-track-label=\"link\" data-test=\"citation-ref\" aria-label=\"Reference 26\">26<\/a><\/sup>\u00a0in microfluidic devices. NOA is a thiolene based polymer that attracted attention due to exhibiting interesting properties like low cost, optical transparency in the visible range, high chemical resistance to strong solvents (acetone, hydrochloric acid, toluene)<sup><a id=\"ref-link-section-d46674302e676\" title=\"Hung, L.-H., Lin, R. &amp; Lee, A. P. Rapid microfabrication of solvent-resistant biocompatible microfluidic devices. Lab Chip 8, 983\u2013987. https:\/\/doi.org\/10.1039\/B717710K (2008).\" href=\"https:\/\/www.nature.com\/articles\/s41598-021-02928-2#ref-CR24\" data-track=\"click\" data-track-action=\"reference anchor\" data-track-label=\"link\" data-test=\"citation-ref\" aria-label=\"Reference 24\">24<\/a>,<a id=\"ref-link-section-d46674302e679\" title=\"Rezvani, S., Shi, N., Squires, T. M. &amp; Schmidt, C. F. Microfluidic device for chemical and mechanical manipulation of suspended cells. J. Phys. D Appl. Phys. 51, 045403. https:\/\/doi.org\/10.1088\/1361-6463\/aaa121 (2018).\" href=\"https:\/\/www.nature.com\/articles\/s41598-021-02928-2#ref-CR27\" data-track=\"click\" data-track-action=\"reference anchor\" data-track-label=\"link\" data-test=\"citation-ref\" aria-label=\"Reference 27\">27<\/a><\/sup>, and hydrophobicity<sup><a id=\"ref-link-section-d46674302e683\" title=\"Dupont, E. P., Luisier, R. &amp; Gijs, M. A. Noa 63 as a uv-curable material for fabrication of microfluidic channels with native hydrophilicity. Microelectron. Eng. 87, 1253\u20131255. https:\/\/doi.org\/10.1016\/j.mee.2009.11.084 (2010).\" href=\"https:\/\/www.nature.com\/articles\/s41598-021-02928-2#ref-CR26\" data-track=\"click\" data-track-action=\"reference anchor\" data-track-label=\"link\" data-test=\"citation-ref\" aria-label=\"Reference 26\">26<\/a><\/sup>\u00a0becoming a great candidate for applications in synchrotron beamlines<sup><a id=\"ref-link-section-d46674302e687\" title=\"W\u00e4gli, P., Homsy, A. &amp; [de Rooij], N. Norland optical adhesive (noa81) microchannels with adjustable wetting behavior and high chemical resistance against a range of mid-infrared-transparent organic solvents. Sens. Actuators B: Chem.156, 994 \u2013 1001, https:\/\/doi.org\/10.1016\/j.snb.2011.02.005 (2011).\" href=\"https:\/\/www.nature.com\/articles\/s41598-021-02928-2#ref-CR28\" data-track=\"click\" data-track-action=\"reference anchor\" data-track-label=\"link\" data-test=\"citation-ref\" aria-label=\"Reference 28\">28<\/a>,<a id=\"ref-link-section-d46674302e690\" title=\"Gouyon, J., d\u2019Orly\u00e9, F., Griveau, S., Bedioui, F. &amp; Varenne, A. Characterization of home-made graphite\/pdms microband electrodes for amperometric detection in an original reusable glass-noa\u00ae-pdms electrophoretic microdevice. Electrochim. Acta329, 135164. https:\/\/doi.org\/10.1016\/j.electacta.2019.135164 (2020).\" href=\"https:\/\/www.nature.com\/articles\/s41598-021-02928-2#ref-CR29\" data-track=\"click\" data-track-action=\"reference anchor\" data-track-label=\"link\" data-test=\"citation-ref\" aria-label=\"Reference 29\">29<\/a><\/sup>.<\/p>\n<p>Motivated by the relevance and impact of synchrotron studies for diverse areas as well as by the challenges in manufacturing microfluidic devices for such applications, we have developed the microfabrication of a three-electrode microfluidic device based on a new sealing method, which is compatible with X-rays (in reflection mode), infrared, and visible light. The device has been designed with only two main parts; a glass substrate, and a thin polymer employed as a sealing layer. We have used a UV-sensitive adhesive to promote adherence between polyester and glass. It is worth noting that the microfabrication involves well-stablished and scalable techniques and the resulting device presents satisfactory bonding strength and high chemical stability in both organic and biological media. The approach adopted in this work converged to a multifunctional microfluidic device.<\/p>\n<\/div>\n<\/div>\n<\/section>\n<section data-title=\"Results and discussions\">\n<div id=\"Sec2-section\" class=\"c-article-section\">\n<h2 id=\"Sec2\" class=\"c-article-section__title js-section-title js-c-reading-companion-sections-item\">Results and discussions<\/h2>\n<div id=\"Sec2-content\" class=\"c-article-section__content\">\n<h3 id=\"Sec3\" class=\"c-article__sub-heading\">Microfabrication procedure<\/h3>\n<p>Initially, 3 cm\u00a0<span class=\"mathjax-tex\"><span id=\"MathJax-Element-1-Frame\" class=\"MathJax\" style=\"box-sizing: inherit; display: inline; font-style: normal; font-weight: normal; line-height: normal; font-size: 18px; text-indent: 0px; text-align: left; text-transform: none; letter-spacing: normal; word-spacing: normal; overflow-wrap: normal; white-space: nowrap; float: none; direction: ltr; max-width: none; max-height: none; min-width: 0px; min-height: 0px; border: 0px; padding: 0px; margin: 0px; position: relative;\" tabindex=\"0\" role=\"presentation\" data-mathml=\"&lt;math xmlns=&quot;http:\/\/www.w3.org\/1998\/Math\/MathML&quot;&gt;&lt;mo&gt;&amp;#x00D7;&lt;\/mo&gt;&lt;\/math&gt;\"><span id=\"MathJax-Span-1\" class=\"math\"><span id=\"MathJax-Span-2\" class=\"mrow\"><span id=\"MathJax-Span-3\" class=\"mo\">\u00d7<\/span><\/span><\/span><span class=\"MJX_Assistive_MathML\" role=\"presentation\">\u00d7<\/span><\/span><\/span>\u00a03 cm glass squares were cut, cleaned up using piranha solution at a temperature of 60\u00a0<span class=\"mathjax-tex\"><span id=\"MathJax-Element-2-Frame\" class=\"MathJax\" style=\"box-sizing: inherit; display: inline; font-style: normal; font-weight: normal; line-height: normal; font-size: 18px; text-indent: 0px; text-align: left; text-transform: none; letter-spacing: normal; word-spacing: normal; overflow-wrap: normal; white-space: nowrap; float: none; direction: ltr; max-width: none; max-height: none; min-width: 0px; min-height: 0px; border: 0px; padding: 0px; margin: 0px; position: relative;\" tabindex=\"0\" role=\"presentation\" data-mathml=\"&lt;math xmlns=&quot;http:\/\/www.w3.org\/1998\/Math\/MathML&quot;&gt;&lt;msup&gt;&lt;mi&gt;&lt;\/mi&gt;&lt;mrow class=&quot;MJX-TeXAtom-ORD&quot;&gt;&lt;mo&gt;&amp;#x2218;&lt;\/mo&gt;&lt;\/mrow&gt;&lt;\/msup&gt;&lt;\/math&gt;\"><span id=\"MathJax-Span-4\" class=\"math\"><span id=\"MathJax-Span-5\" class=\"mrow\"><span id=\"MathJax-Span-6\" class=\"msubsup\"><span id=\"MathJax-Span-7\" class=\"mi\"><\/span><span id=\"MathJax-Span-8\" class=\"texatom\"><span id=\"MathJax-Span-9\" class=\"mrow\"><span id=\"MathJax-Span-10\" class=\"mo\">\u2218<\/span><\/span><\/span><\/span><\/span><\/span><span class=\"MJX_Assistive_MathML\" role=\"presentation\">\u2218<\/span><\/span><\/span>\u00a0C, and then used as a substrate. The microchannels were prepared in a clean room using a geometry defined by the photolithography mask. In total, four lithography masks or channel geometry, were prepared: 100\u00a0<span class=\"mathjax-tex\"><span id=\"MathJax-Element-3-Frame\" class=\"MathJax\" style=\"box-sizing: inherit; display: inline; font-style: normal; font-weight: normal; line-height: normal; font-size: 18px; text-indent: 0px; text-align: left; text-transform: none; letter-spacing: normal; word-spacing: normal; overflow-wrap: normal; white-space: nowrap; float: none; direction: ltr; max-width: none; max-height: none; min-width: 0px; min-height: 0px; border: 0px; padding: 0px; margin: 0px; position: relative;\" tabindex=\"0\" role=\"presentation\" data-mathml=\"&lt;math xmlns=&quot;http:\/\/www.w3.org\/1998\/Math\/MathML&quot;&gt;&lt;mi&gt;&amp;#x03BC;&lt;\/mi&gt;&lt;\/math&gt;\"><span id=\"MathJax-Span-11\" class=\"math\"><span id=\"MathJax-Span-12\" class=\"mrow\"><span id=\"MathJax-Span-13\" class=\"mi\">\ud835\udf07<\/span><\/span><\/span><span class=\"MJX_Assistive_MathML\" role=\"presentation\">\u03bc<\/span><\/span><\/span>m (C1) and 100\u00a0<span class=\"mathjax-tex\"><span id=\"MathJax-Element-4-Frame\" class=\"MathJax\" style=\"box-sizing: inherit; display: inline; font-style: normal; font-weight: normal; line-height: normal; font-size: 18px; text-indent: 0px; text-align: left; text-transform: none; letter-spacing: normal; word-spacing: normal; overflow-wrap: normal; white-space: nowrap; float: none; direction: ltr; max-width: none; max-height: none; min-width: 0px; min-height: 0px; border: 0px; padding: 0px; margin: 0px; position: relative;\" tabindex=\"0\" role=\"presentation\" data-mathml=\"&lt;math xmlns=&quot;http:\/\/www.w3.org\/1998\/Math\/MathML&quot;&gt;&lt;mi&gt;&amp;#x03BC;&lt;\/mi&gt;&lt;\/math&gt;\"><span id=\"MathJax-Span-14\" class=\"math\"><span id=\"MathJax-Span-15\" class=\"mrow\"><span id=\"MathJax-Span-16\" class=\"mi\">\ud835\udf07<\/span><\/span><\/span><span class=\"MJX_Assistive_MathML\" role=\"presentation\">\u03bc<\/span><\/span><\/span>m plus a reservoir (res) with 300\u00a0<span class=\"mathjax-tex\"><span id=\"MathJax-Element-5-Frame\" class=\"MathJax\" style=\"box-sizing: inherit; display: inline; font-style: normal; font-weight: normal; line-height: normal; font-size: 18px; text-indent: 0px; text-align: left; text-transform: none; letter-spacing: normal; word-spacing: normal; overflow-wrap: normal; white-space: nowrap; float: none; direction: ltr; max-width: none; max-height: none; min-width: 0px; min-height: 0px; border: 0px; padding: 0px; margin: 0px; position: relative;\" tabindex=\"0\" role=\"presentation\" data-mathml=\"&lt;math xmlns=&quot;http:\/\/www.w3.org\/1998\/Math\/MathML&quot;&gt;&lt;mi&gt;&amp;#x03BC;&lt;\/mi&gt;&lt;\/math&gt;\"><span id=\"MathJax-Span-17\" class=\"math\"><span id=\"MathJax-Span-18\" class=\"mrow\"><span id=\"MathJax-Span-19\" class=\"mi\">\ud835\udf07<\/span><\/span><\/span><span class=\"MJX_Assistive_MathML\" role=\"presentation\">\u03bc<\/span><\/span><\/span>m (C2), 200\u00a0<span class=\"mathjax-tex\"><span id=\"MathJax-Element-6-Frame\" class=\"MathJax\" style=\"box-sizing: inherit; display: inline; font-style: normal; font-weight: normal; line-height: normal; font-size: 18px; text-indent: 0px; text-align: left; text-transform: none; letter-spacing: normal; word-spacing: normal; overflow-wrap: normal; white-space: nowrap; float: none; direction: ltr; max-width: none; max-height: none; min-width: 0px; min-height: 0px; border: 0px; padding: 0px; margin: 0px; position: relative;\" tabindex=\"0\" role=\"presentation\" data-mathml=\"&lt;math xmlns=&quot;http:\/\/www.w3.org\/1998\/Math\/MathML&quot;&gt;&lt;mi&gt;&amp;#x03BC;&lt;\/mi&gt;&lt;\/math&gt;\"><span id=\"MathJax-Span-20\" class=\"math\"><span id=\"MathJax-Span-21\" class=\"mrow\"><span id=\"MathJax-Span-22\" class=\"mi\">\ud835\udf07<\/span><\/span><\/span><span class=\"MJX_Assistive_MathML\" role=\"presentation\">\u03bc<\/span><\/span><\/span>m (C3), and 200\u00a0<span class=\"mathjax-tex\"><span id=\"MathJax-Element-7-Frame\" class=\"MathJax\" style=\"box-sizing: inherit; display: inline; font-style: normal; font-weight: normal; line-height: normal; font-size: 18px; text-indent: 0px; text-align: left; text-transform: none; letter-spacing: normal; word-spacing: normal; overflow-wrap: normal; white-space: nowrap; float: none; direction: ltr; max-width: none; max-height: none; min-width: 0px; min-height: 0px; border: 0px; padding: 0px; margin: 0px; position: relative;\" tabindex=\"0\" role=\"presentation\" data-mathml=\"&lt;math xmlns=&quot;http:\/\/www.w3.org\/1998\/Math\/MathML&quot;&gt;&lt;mi&gt;&amp;#x03BC;&lt;\/mi&gt;&lt;\/math&gt;\"><span id=\"MathJax-Span-23\" class=\"math\"><span id=\"MathJax-Span-24\" class=\"mrow\"><span id=\"MathJax-Span-25\" class=\"mi\">\ud835\udf07<\/span><\/span><\/span><span class=\"MJX_Assistive_MathML\" role=\"presentation\">\u03bc<\/span><\/span><\/span>m plus a reservoir(res) with 600\u00a0<span class=\"mathjax-tex\"><span id=\"MathJax-Element-8-Frame\" class=\"MathJax\" style=\"box-sizing: inherit; display: inline; font-style: normal; font-weight: normal; line-height: normal; font-size: 18px; text-indent: 0px; text-align: left; text-transform: none; letter-spacing: normal; word-spacing: normal; overflow-wrap: normal; white-space: nowrap; float: none; direction: ltr; max-width: none; max-height: none; min-width: 0px; min-height: 0px; border: 0px; padding: 0px; margin: 0px; position: relative;\" tabindex=\"0\" role=\"presentation\" data-mathml=\"&lt;math xmlns=&quot;http:\/\/www.w3.org\/1998\/Math\/MathML&quot;&gt;&lt;mi&gt;&amp;#x03BC;&lt;\/mi&gt;&lt;\/math&gt;\"><span id=\"MathJax-Span-26\" class=\"math\"><span id=\"MathJax-Span-27\" class=\"mrow\"><span id=\"MathJax-Span-28\" class=\"mi\">\ud835\udf07<\/span><\/span><\/span><span class=\"MJX_Assistive_MathML\" role=\"presentation\">\u03bc<\/span><\/span><\/span>m (C4). Prior to the microchannel patterning, a layer of 60 nm of chromium was evaporated on the clean glass, working as a protective layer that improves the isotropic corrosion of the glass. To prepare the channels, the trenches were exposed to a wet chemical etching<sup><a id=\"ref-link-section-d46674302e851\" title=\"Diepold, T. &amp; Obermeier, E. Smoothing of ultrasonically drilled holes in borosilicate glass by wet chemical etching. J. Micromech. Microeng. 6, 29\u201332. https:\/\/doi.org\/10.1088\/0960-1317\/6\/1\/003 (1996).\" href=\"https:\/\/www.nature.com\/articles\/s41598-021-02928-2#ref-CR30\" data-track=\"click\" data-track-action=\"reference anchor\" data-track-label=\"link\" data-test=\"citation-ref\" aria-label=\"Reference 30\">30<\/a><\/sup>\u00a0using a solution at HF 49%, NH<sub>4<\/sub>F 1.38 M, and HCl 38%, and hydrofluoric acid (HF) 20%, resulting in smooth channels. After the glass corrosion, using a second photolithography mask, three electrodes were patterned, and then gold was deposited on the channels by magnetron sputtering. After the deposition of the three gold electrodes, the device was drilled to enable connecting the inlet and outlet tubes. The sequence of the channel and electrode preparation is shown in Fig.\u00a0<a href=\"https:\/\/www.nature.com\/articles\/s41598-021-02928-2#MOESM2\" data-track=\"click\" data-track-label=\"link\" data-track-action=\"supplementary material anchor\">S1<\/a>\u00a0(Supporting Information).<\/p>\n<p>The most important and delicate step of this work is the sealing process, once the sealing layer is a thin film. To succeed, an adhesive composed of NOA and a polyester film was prepared, herein this stack is also called\u00a0<i>sticker<\/i>, which simplifies the sealing process. The sealing steps are summarized in Fig.\u00a0<a href=\"https:\/\/www.nature.com\/articles\/s41598-021-02928-2#Fig1\" data-track=\"click\" data-track-label=\"link\" data-track-action=\"figure anchor\">1<\/a>. Firstly, a polyester film with 12\u00a0<span class=\"mathjax-tex\"><span id=\"MathJax-Element-9-Frame\" class=\"MathJax\" style=\"box-sizing: inherit; display: inline; font-style: normal; font-weight: normal; line-height: normal; font-size: 18px; text-indent: 0px; text-align: left; text-transform: none; letter-spacing: normal; word-spacing: normal; overflow-wrap: normal; white-space: nowrap; float: none; direction: ltr; max-width: none; max-height: none; min-width: 0px; min-height: 0px; border: 0px; padding: 0px; margin: 0px; position: relative;\" tabindex=\"0\" role=\"presentation\" data-mathml=\"&lt;math xmlns=&quot;http:\/\/www.w3.org\/1998\/Math\/MathML&quot;&gt;&lt;mi&gt;&amp;#x03BC;&lt;\/mi&gt;&lt;\/math&gt;\"><span id=\"MathJax-Span-29\" class=\"math\"><span id=\"MathJax-Span-30\" class=\"mrow\"><span id=\"MathJax-Span-31\" class=\"mi\">\ud835\udf07<\/span><\/span><\/span><span class=\"MJX_Assistive_MathML\" role=\"presentation\">\u03bc<\/span><\/span><\/span>m of thickness was fixed with double-face adhesive tape on a glass frame to ensure mechanical stability (Fig.\u00a0<a href=\"https:\/\/www.nature.com\/articles\/s41598-021-02928-2#Fig1\" data-track=\"click\" data-track-label=\"link\" data-track-action=\"figure anchor\">1<\/a>a). Thus, the stack glass-frame\/polyester was transferred to the spin-coater and a thin film (up to 1\u00a0<span class=\"mathjax-tex\"><span id=\"MathJax-Element-10-Frame\" class=\"MathJax\" style=\"box-sizing: inherit; display: inline; font-style: normal; font-weight: normal; line-height: normal; font-size: 18px; text-indent: 0px; text-align: left; text-transform: none; letter-spacing: normal; word-spacing: normal; overflow-wrap: normal; white-space: nowrap; float: none; direction: ltr; max-width: none; max-height: none; min-width: 0px; min-height: 0px; border: 0px; padding: 0px; margin: 0px; position: relative;\" tabindex=\"0\" role=\"presentation\" data-mathml=\"&lt;math xmlns=&quot;http:\/\/www.w3.org\/1998\/Math\/MathML&quot;&gt;&lt;mrow class=&quot;MJX-TeXAtom-ORD&quot;&gt;&lt;mtext fontfamily=&quot;Times&quot;&gt;&amp;#x03BC;&lt;\/mtext&gt;&lt;\/mrow&gt;&lt;\/math&gt;\"><span id=\"MathJax-Span-32\" class=\"math\"><span id=\"MathJax-Span-33\" class=\"mrow\"><span id=\"MathJax-Span-34\" class=\"texatom\"><span id=\"MathJax-Span-35\" class=\"mrow\"><span id=\"MathJax-Span-36\" class=\"mtext\">\u03bc<\/span><\/span><\/span><\/span><\/span><span class=\"MJX_Assistive_MathML\" role=\"presentation\">\u03bc<\/span><\/span><\/span>m) of NOA was prepared on the polyester film at 5000 rpm for 35 s. Then, the device was attached to the NOA side as shown in Fig.\u00a0<a href=\"https:\/\/www.nature.com\/articles\/s41598-021-02928-2#Fig1\" data-track=\"click\" data-track-label=\"link\" data-track-action=\"figure anchor\">1<\/a>b\u2013c. Finally, a cure was done exposing the device to ultraviolet light (<span class=\"mathjax-tex\"><span id=\"MathJax-Element-11-Frame\" class=\"MathJax\" style=\"box-sizing: inherit; display: inline; font-style: normal; font-weight: normal; line-height: normal; font-size: 18px; text-indent: 0px; text-align: left; text-transform: none; letter-spacing: normal; word-spacing: normal; overflow-wrap: normal; white-space: nowrap; float: none; direction: ltr; max-width: none; max-height: none; min-width: 0px; min-height: 0px; border: 0px; padding: 0px; margin: 0px; position: relative;\" tabindex=\"0\" role=\"presentation\" data-mathml=\"&lt;math xmlns=&quot;http:\/\/www.w3.org\/1998\/Math\/MathML&quot;&gt;&lt;mi&gt;&amp;#x03BB;&lt;\/mi&gt;&lt;\/math&gt;\"><span id=\"MathJax-Span-37\" class=\"math\"><span id=\"MathJax-Span-38\" class=\"mrow\"><span id=\"MathJax-Span-39\" class=\"mi\">\ud835\udf06<\/span><\/span><\/span><span class=\"MJX_Assistive_MathML\" role=\"presentation\">\u03bb<\/span><\/span><\/span>=365 nm) for 2 min at room temperature. After the curing step, the device was kept at 50\u00a0<span class=\"mathjax-tex\"><span id=\"MathJax-Element-12-Frame\" class=\"MathJax\" style=\"box-sizing: inherit; display: inline; font-style: normal; font-weight: normal; line-height: normal; font-size: 18px; text-indent: 0px; text-align: left; text-transform: none; letter-spacing: normal; word-spacing: normal; overflow-wrap: normal; white-space: nowrap; float: none; direction: ltr; max-width: none; max-height: none; min-width: 0px; min-height: 0px; border: 0px; padding: 0px; margin: 0px; position: relative;\" tabindex=\"0\" role=\"presentation\" data-mathml=\"&lt;math xmlns=&quot;http:\/\/www.w3.org\/1998\/Math\/MathML&quot;&gt;&lt;msup&gt;&lt;mi&gt;&lt;\/mi&gt;&lt;mrow class=&quot;MJX-TeXAtom-ORD&quot;&gt;&lt;mo&gt;&amp;#x2218;&lt;\/mo&gt;&lt;\/mrow&gt;&lt;\/msup&gt;&lt;\/math&gt;\"><span id=\"MathJax-Span-40\" class=\"math\"><span id=\"MathJax-Span-41\" class=\"mrow\"><span id=\"MathJax-Span-42\" class=\"msubsup\"><span id=\"MathJax-Span-43\" class=\"mi\"><\/span><span id=\"MathJax-Span-44\" class=\"texatom\"><span id=\"MathJax-Span-45\" class=\"mrow\"><span id=\"MathJax-Span-46\" class=\"mo\">\u2218<\/span><\/span><\/span><\/span><\/span><\/span><span class=\"MJX_Assistive_MathML\" role=\"presentation\">\u2218<\/span><\/span><\/span>\u00a0C for 12 h to improve the adhesion (Fig.\u00a0<a href=\"https:\/\/www.nature.com\/articles\/s41598-021-02928-2#Fig1\" data-track=\"click\" data-track-label=\"link\" data-track-action=\"figure anchor\">1<\/a>d,e). In order to access the three gold electrodes, the spare piece of the polyester film was cut-off from the sealed device (Fig.\u00a0<a href=\"https:\/\/www.nature.com\/articles\/s41598-021-02928-2#Fig1\" data-track=\"click\" data-track-label=\"link\" data-track-action=\"figure anchor\">1<\/a>f). In the last step, the glass was drilled in the backside, and the inlet and outlet connections (silicone tubes) were welded using PDMS support, which gives high mechanical stability to the connections. All the sealing steps were carried out into a cleanroom.<\/p>\n<div id=\"figure-1\" class=\"c-article-section__figure js-c-reading-companion-figures-item\" data-test=\"figure\" data-container-section=\"figure\" data-title=\"Figure 1\">\n<figure><figcaption><b id=\"Fig1\" class=\"c-article-section__figure-caption\" data-test=\"figure-caption-text\">Figure 1<\/b><\/figcaption><div class=\"c-article-section__figure-content\">\n<div class=\"c-article-section__figure-item\"><a class=\"c-article-section__figure-link\" href=\"https:\/\/www.nature.com\/articles\/s41598-021-02928-2\/figures\/1\" rel=\"nofollow\" data-test=\"img-link\" data-track=\"click\" data-track-label=\"image\" data-track-action=\"view figure\"><picture><source srcset=\"\/\/media.springernature.com\/lw685\/springer-static\/image\/art%3A10.1038%2Fs41598-021-02928-2\/MediaObjects\/41598_2021_2928_Fig1_HTML.png?as=webp\" type=\"image\/webp\" \/><img loading=\"lazy\" decoding=\"async\" src=\"https:\/\/media.springernature.com\/lw685\/springer-static\/image\/art%3A10.1038%2Fs41598-021-02928-2\/MediaObjects\/41598_2021_2928_Fig1_HTML.png\" alt=\"figure1\" width=\"685\" height=\"452\" aria-describedby=\"Fig1\" \/><\/picture><\/a><\/div>\n<div id=\"figure-1-desc\" class=\"c-article-section__figure-description\" data-test=\"bottom-caption\">\n<p>Sequence of the sealing process (<b>a<\/b>) Glass frame used as a support for the polyester film (<b>b<\/b>\u2013<b>c<\/b>) Spin-coating process of the NOA on the polyester film, and the procedure to attach the device to the \u201cstikcker\u201d (<b>d<\/b>\u2013<b>e<\/b>) UV-cure (2 min) and the thermal annealing at 50\u00a0<span class=\"mathjax-tex\"><span id=\"MathJax-Element-13-Frame\" class=\"MathJax\" style=\"box-sizing: inherit; display: inline; font-style: normal; font-weight: normal; line-height: normal; font-size: 16px; text-indent: 0px; text-align: left; text-transform: none; letter-spacing: normal; word-spacing: normal; overflow-wrap: normal; white-space: nowrap; float: none; direction: ltr; max-width: none; max-height: none; min-width: 0px; min-height: 0px; border: 0px; padding: 0px; margin: 0px; position: relative;\" tabindex=\"0\" role=\"presentation\" data-mathml=\"&lt;math xmlns=&quot;http:\/\/www.w3.org\/1998\/Math\/MathML&quot;&gt;&lt;msup&gt;&lt;mi&gt;&lt;\/mi&gt;&lt;mrow class=&quot;MJX-TeXAtom-ORD&quot;&gt;&lt;mo&gt;&amp;#x2218;&lt;\/mo&gt;&lt;\/mrow&gt;&lt;\/msup&gt;&lt;\/math&gt;\"><span id=\"MathJax-Span-47\" class=\"math\"><span id=\"MathJax-Span-48\" class=\"mrow\"><span id=\"MathJax-Span-49\" class=\"msubsup\"><span id=\"MathJax-Span-50\" class=\"mi\"><\/span><span id=\"MathJax-Span-51\" class=\"texatom\"><span id=\"MathJax-Span-52\" class=\"mrow\"><span id=\"MathJax-Span-53\" class=\"mo\">\u2218<\/span><\/span><\/span><\/span><\/span><\/span><span class=\"MJX_Assistive_MathML\" role=\"presentation\">\u2218<\/span><\/span><\/span>\u00a0C (12 h) employed to improve the adhesion between the device and sealing layer (<b>f<\/b>\u2013<b>g<\/b>) Shows the device completely sealed, and after bound the inlet and outlet connections, respectively.<\/p>\n<\/div>\n<\/div>\n<div class=\"u-text-right u-hide-print\"><a href=\"https:\/\/www.nature.com\/articles\/s41598-021-02928-2\">Please refer to the original article:<\/a><\/div>\n<\/figure>\n<\/div>\n<\/div>\n<\/div>\n<\/section>\n<p>[\/vc_column_text][\/vc_column][vc_column width=&#8221;1\/5&#8243; rt_wrp_col_paddings=&#8221;false&#8221; rt_border_top=&#8221;&#8221; rt_border_bottom=&#8221;&#8221; rt_border_left=&#8221;&#8221; rt_border_right=&#8221;&#8221; rt_border_top_mobile=&#8221;&#8221; rt_border_bottom_mobile=&#8221;&#8221; rt_border_left_mobile=&#8221;&#8221; rt_border_right_mobile=&#8221;&#8221; rt_bg_image_repeat=&#8221;repeat&#8221; rt_bg_size=&#8221;auto auto&#8221; rt_bg_position=&#8221;right top&#8221; rt_bg_attachment=&#8221;scroll&#8221;][vc_widget_sidebar sidebar_id=&#8221;sidebar-for-portfolio&#8221;][\/vc_column][\/vc_row]<\/p>\n","protected":false},"excerpt":{"rendered":"<p>Microfluidic devices operate with small amounts of samples through micrometer and\/or sub-micrometer channels1. As the main characteristics, these devices show reduced size, low weight, and high throughput. <\/p>\n","protected":false},"author":1,"featured_media":4883,"comment_status":"closed","ping_status":"open","sticky":false,"template":"","format":"standard","meta":{"footnotes":""},"categories":[1],"tags":[],"yoast_head":"<!-- This site is optimized with the Yoast SEO plugin v18.0 - https:\/\/yoast.com\/wordpress\/plugins\/seo\/ -->\n<title>Development of a sticker sealed microfluidic device for in situ analytical measurements using synchrotron radiation - WenHao<\/title>\n<meta name=\"robots\" content=\"index, follow, max-snippet:-1, max-image-preview:large, max-video-preview:-1\" \/>\n<link rel=\"canonical\" href=\"https:\/\/whmicro.com\/?p=4882\" \/>\n<meta property=\"og:locale\" content=\"en_US\" \/>\n<meta property=\"og:type\" content=\"article\" \/>\n<meta property=\"og:title\" content=\"Development of a sticker sealed microfluidic device for in situ analytical measurements using synchrotron radiation - WenHao\" \/>\n<meta property=\"og:description\" content=\"Microfluidic devices operate with small amounts of samples through micrometer and\/or sub-micrometer channels1. 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