Cargando…
Three-dimensional mesostructures as high-temperature growth templates, electronic cellular scaffolds, and self-propelled microrobots
Recent work demonstrates that processes of stress release in prestrained elastomeric substrates can guide the assembly of sophisticated 3D micro/nanostructures in advanced materials. Reported application examples include soft electronic components, tunable electromagnetic and optical devices, vibrat...
Autores principales: | , , , , , , , , , , , , , , , , , , , , , , , , , , , , , , , , , , , , , , |
---|---|
Formato: | Online Artículo Texto |
Lenguaje: | English |
Publicado: |
National Academy of Sciences
2017
|
Materias: | |
Acceso en línea: | https://www.ncbi.nlm.nih.gov/pmc/articles/PMC5692593/ https://www.ncbi.nlm.nih.gov/pubmed/29078394 http://dx.doi.org/10.1073/pnas.1713805114 |
_version_ | 1783279907952918528 |
---|---|
author | Yan, Zheng Han, Mengdi Shi, Yan Badea, Adina Yang, Yiyuan Kulkarni, Ashish Hanson, Erik Kandel, Mikhail E. Wen, Xiewen Zhang, Fan Luo, Yiyue Lin, Qing Zhang, Hang Guo, Xiaogang Huang, Yuming Nan, Kewang Jia, Shuai Oraham, Aaron W. Mevis, Molly B. Lim, Jaeman Guo, Xuelin Gao, Mingye Ryu, Woomi Yu, Ki Jun Nicolau, Bruno G. Petronico, Aaron Rubakhin, Stanislav S. Lou, Jun Ajayan, Pulickel M. Thornton, Katsuyo Popescu, Gabriel Fang, Daining Sweedler, Jonathan V. Braun, Paul V. Zhang, Haixia Nuzzo, Ralph G. Huang, Yonggang Zhang, Yihui Rogers, John A. |
author_facet | Yan, Zheng Han, Mengdi Shi, Yan Badea, Adina Yang, Yiyuan Kulkarni, Ashish Hanson, Erik Kandel, Mikhail E. Wen, Xiewen Zhang, Fan Luo, Yiyue Lin, Qing Zhang, Hang Guo, Xiaogang Huang, Yuming Nan, Kewang Jia, Shuai Oraham, Aaron W. Mevis, Molly B. Lim, Jaeman Guo, Xuelin Gao, Mingye Ryu, Woomi Yu, Ki Jun Nicolau, Bruno G. Petronico, Aaron Rubakhin, Stanislav S. Lou, Jun Ajayan, Pulickel M. Thornton, Katsuyo Popescu, Gabriel Fang, Daining Sweedler, Jonathan V. Braun, Paul V. Zhang, Haixia Nuzzo, Ralph G. Huang, Yonggang Zhang, Yihui Rogers, John A. |
author_sort | Yan, Zheng |
collection | PubMed |
description | Recent work demonstrates that processes of stress release in prestrained elastomeric substrates can guide the assembly of sophisticated 3D micro/nanostructures in advanced materials. Reported application examples include soft electronic components, tunable electromagnetic and optical devices, vibrational metrology platforms, and other unusual technologies, each enabled by uniquely engineered 3D architectures. A significant disadvantage of these systems is that the elastomeric substrates, while essential to the assembly process, can impose significant engineering constraints in terms of operating temperatures and levels of dimensional stability; they also prevent the realization of 3D structures in freestanding forms. Here, we introduce concepts in interfacial photopolymerization, nonlinear mechanics, and physical transfer that bypass these limitations. The results enable 3D mesostructures in fully or partially freestanding forms, with additional capabilities in integration onto nearly any class of substrate, from planar, hard inorganic materials to textured, soft biological tissues, all via mechanisms quantitatively described by theoretical modeling. Illustrations of these ideas include their use in 3D structures as frameworks for templated growth of organized lamellae from AgCl–KCl eutectics and of atomic layers of WSe(2) from vapor-phase precursors, as open-architecture electronic scaffolds for formation of dorsal root ganglion (DRG) neural networks, and as catalyst supports for propulsive systems in 3D microswimmers with geometrically controlled dynamics. Taken together, these methodologies establish a set of enabling options in 3D micro/nanomanufacturing that lie outside of the scope of existing alternatives. |
format | Online Article Text |
id | pubmed-5692593 |
institution | National Center for Biotechnology Information |
language | English |
publishDate | 2017 |
publisher | National Academy of Sciences |
record_format | MEDLINE/PubMed |
spelling | pubmed-56925932017-11-20 Three-dimensional mesostructures as high-temperature growth templates, electronic cellular scaffolds, and self-propelled microrobots Yan, Zheng Han, Mengdi Shi, Yan Badea, Adina Yang, Yiyuan Kulkarni, Ashish Hanson, Erik Kandel, Mikhail E. Wen, Xiewen Zhang, Fan Luo, Yiyue Lin, Qing Zhang, Hang Guo, Xiaogang Huang, Yuming Nan, Kewang Jia, Shuai Oraham, Aaron W. Mevis, Molly B. Lim, Jaeman Guo, Xuelin Gao, Mingye Ryu, Woomi Yu, Ki Jun Nicolau, Bruno G. Petronico, Aaron Rubakhin, Stanislav S. Lou, Jun Ajayan, Pulickel M. Thornton, Katsuyo Popescu, Gabriel Fang, Daining Sweedler, Jonathan V. Braun, Paul V. Zhang, Haixia Nuzzo, Ralph G. Huang, Yonggang Zhang, Yihui Rogers, John A. Proc Natl Acad Sci U S A PNAS Plus Recent work demonstrates that processes of stress release in prestrained elastomeric substrates can guide the assembly of sophisticated 3D micro/nanostructures in advanced materials. Reported application examples include soft electronic components, tunable electromagnetic and optical devices, vibrational metrology platforms, and other unusual technologies, each enabled by uniquely engineered 3D architectures. A significant disadvantage of these systems is that the elastomeric substrates, while essential to the assembly process, can impose significant engineering constraints in terms of operating temperatures and levels of dimensional stability; they also prevent the realization of 3D structures in freestanding forms. Here, we introduce concepts in interfacial photopolymerization, nonlinear mechanics, and physical transfer that bypass these limitations. The results enable 3D mesostructures in fully or partially freestanding forms, with additional capabilities in integration onto nearly any class of substrate, from planar, hard inorganic materials to textured, soft biological tissues, all via mechanisms quantitatively described by theoretical modeling. Illustrations of these ideas include their use in 3D structures as frameworks for templated growth of organized lamellae from AgCl–KCl eutectics and of atomic layers of WSe(2) from vapor-phase precursors, as open-architecture electronic scaffolds for formation of dorsal root ganglion (DRG) neural networks, and as catalyst supports for propulsive systems in 3D microswimmers with geometrically controlled dynamics. Taken together, these methodologies establish a set of enabling options in 3D micro/nanomanufacturing that lie outside of the scope of existing alternatives. National Academy of Sciences 2017-11-07 2017-10-25 /pmc/articles/PMC5692593/ /pubmed/29078394 http://dx.doi.org/10.1073/pnas.1713805114 Text en Copyright © 2017 the Author(s). Published by PNAS. https://creativecommons.org/licenses/by-nc-nd/4.0/ This open access article is distributed under Creative Commons Attribution-NonCommercial-NoDerivatives License 4.0 (CC BY-NC-ND) (https://creativecommons.org/licenses/by-nc-nd/4.0/) .https://creativecommons.org/licenses/by-nc-nd/4.0/ |
spellingShingle | PNAS Plus Yan, Zheng Han, Mengdi Shi, Yan Badea, Adina Yang, Yiyuan Kulkarni, Ashish Hanson, Erik Kandel, Mikhail E. Wen, Xiewen Zhang, Fan Luo, Yiyue Lin, Qing Zhang, Hang Guo, Xiaogang Huang, Yuming Nan, Kewang Jia, Shuai Oraham, Aaron W. Mevis, Molly B. Lim, Jaeman Guo, Xuelin Gao, Mingye Ryu, Woomi Yu, Ki Jun Nicolau, Bruno G. Petronico, Aaron Rubakhin, Stanislav S. Lou, Jun Ajayan, Pulickel M. Thornton, Katsuyo Popescu, Gabriel Fang, Daining Sweedler, Jonathan V. Braun, Paul V. Zhang, Haixia Nuzzo, Ralph G. Huang, Yonggang Zhang, Yihui Rogers, John A. Three-dimensional mesostructures as high-temperature growth templates, electronic cellular scaffolds, and self-propelled microrobots |
title | Three-dimensional mesostructures as high-temperature growth templates, electronic cellular scaffolds, and self-propelled microrobots |
title_full | Three-dimensional mesostructures as high-temperature growth templates, electronic cellular scaffolds, and self-propelled microrobots |
title_fullStr | Three-dimensional mesostructures as high-temperature growth templates, electronic cellular scaffolds, and self-propelled microrobots |
title_full_unstemmed | Three-dimensional mesostructures as high-temperature growth templates, electronic cellular scaffolds, and self-propelled microrobots |
title_short | Three-dimensional mesostructures as high-temperature growth templates, electronic cellular scaffolds, and self-propelled microrobots |
title_sort | three-dimensional mesostructures as high-temperature growth templates, electronic cellular scaffolds, and self-propelled microrobots |
topic | PNAS Plus |
url | https://www.ncbi.nlm.nih.gov/pmc/articles/PMC5692593/ https://www.ncbi.nlm.nih.gov/pubmed/29078394 http://dx.doi.org/10.1073/pnas.1713805114 |
work_keys_str_mv | AT yanzheng threedimensionalmesostructuresashightemperaturegrowthtemplateselectroniccellularscaffoldsandselfpropelledmicrorobots AT hanmengdi threedimensionalmesostructuresashightemperaturegrowthtemplateselectroniccellularscaffoldsandselfpropelledmicrorobots AT shiyan threedimensionalmesostructuresashightemperaturegrowthtemplateselectroniccellularscaffoldsandselfpropelledmicrorobots AT badeaadina threedimensionalmesostructuresashightemperaturegrowthtemplateselectroniccellularscaffoldsandselfpropelledmicrorobots AT yangyiyuan threedimensionalmesostructuresashightemperaturegrowthtemplateselectroniccellularscaffoldsandselfpropelledmicrorobots AT kulkarniashish threedimensionalmesostructuresashightemperaturegrowthtemplateselectroniccellularscaffoldsandselfpropelledmicrorobots AT hansonerik threedimensionalmesostructuresashightemperaturegrowthtemplateselectroniccellularscaffoldsandselfpropelledmicrorobots AT kandelmikhaile threedimensionalmesostructuresashightemperaturegrowthtemplateselectroniccellularscaffoldsandselfpropelledmicrorobots AT wenxiewen threedimensionalmesostructuresashightemperaturegrowthtemplateselectroniccellularscaffoldsandselfpropelledmicrorobots AT zhangfan threedimensionalmesostructuresashightemperaturegrowthtemplateselectroniccellularscaffoldsandselfpropelledmicrorobots AT luoyiyue threedimensionalmesostructuresashightemperaturegrowthtemplateselectroniccellularscaffoldsandselfpropelledmicrorobots AT linqing threedimensionalmesostructuresashightemperaturegrowthtemplateselectroniccellularscaffoldsandselfpropelledmicrorobots AT zhanghang threedimensionalmesostructuresashightemperaturegrowthtemplateselectroniccellularscaffoldsandselfpropelledmicrorobots AT guoxiaogang threedimensionalmesostructuresashightemperaturegrowthtemplateselectroniccellularscaffoldsandselfpropelledmicrorobots AT huangyuming threedimensionalmesostructuresashightemperaturegrowthtemplateselectroniccellularscaffoldsandselfpropelledmicrorobots AT nankewang threedimensionalmesostructuresashightemperaturegrowthtemplateselectroniccellularscaffoldsandselfpropelledmicrorobots AT jiashuai threedimensionalmesostructuresashightemperaturegrowthtemplateselectroniccellularscaffoldsandselfpropelledmicrorobots AT orahamaaronw threedimensionalmesostructuresashightemperaturegrowthtemplateselectroniccellularscaffoldsandselfpropelledmicrorobots AT mevismollyb threedimensionalmesostructuresashightemperaturegrowthtemplateselectroniccellularscaffoldsandselfpropelledmicrorobots AT limjaeman threedimensionalmesostructuresashightemperaturegrowthtemplateselectroniccellularscaffoldsandselfpropelledmicrorobots AT guoxuelin threedimensionalmesostructuresashightemperaturegrowthtemplateselectroniccellularscaffoldsandselfpropelledmicrorobots AT gaomingye threedimensionalmesostructuresashightemperaturegrowthtemplateselectroniccellularscaffoldsandselfpropelledmicrorobots AT ryuwoomi threedimensionalmesostructuresashightemperaturegrowthtemplateselectroniccellularscaffoldsandselfpropelledmicrorobots AT yukijun threedimensionalmesostructuresashightemperaturegrowthtemplateselectroniccellularscaffoldsandselfpropelledmicrorobots AT nicolaubrunog threedimensionalmesostructuresashightemperaturegrowthtemplateselectroniccellularscaffoldsandselfpropelledmicrorobots AT petronicoaaron threedimensionalmesostructuresashightemperaturegrowthtemplateselectroniccellularscaffoldsandselfpropelledmicrorobots AT rubakhinstanislavs threedimensionalmesostructuresashightemperaturegrowthtemplateselectroniccellularscaffoldsandselfpropelledmicrorobots AT loujun threedimensionalmesostructuresashightemperaturegrowthtemplateselectroniccellularscaffoldsandselfpropelledmicrorobots AT ajayanpulickelm threedimensionalmesostructuresashightemperaturegrowthtemplateselectroniccellularscaffoldsandselfpropelledmicrorobots AT thorntonkatsuyo threedimensionalmesostructuresashightemperaturegrowthtemplateselectroniccellularscaffoldsandselfpropelledmicrorobots AT popescugabriel threedimensionalmesostructuresashightemperaturegrowthtemplateselectroniccellularscaffoldsandselfpropelledmicrorobots AT fangdaining threedimensionalmesostructuresashightemperaturegrowthtemplateselectroniccellularscaffoldsandselfpropelledmicrorobots AT sweedlerjonathanv threedimensionalmesostructuresashightemperaturegrowthtemplateselectroniccellularscaffoldsandselfpropelledmicrorobots AT braunpaulv threedimensionalmesostructuresashightemperaturegrowthtemplateselectroniccellularscaffoldsandselfpropelledmicrorobots AT zhanghaixia threedimensionalmesostructuresashightemperaturegrowthtemplateselectroniccellularscaffoldsandselfpropelledmicrorobots AT nuzzoralphg threedimensionalmesostructuresashightemperaturegrowthtemplateselectroniccellularscaffoldsandselfpropelledmicrorobots AT huangyonggang threedimensionalmesostructuresashightemperaturegrowthtemplateselectroniccellularscaffoldsandselfpropelledmicrorobots AT zhangyihui threedimensionalmesostructuresashightemperaturegrowthtemplateselectroniccellularscaffoldsandselfpropelledmicrorobots AT rogersjohna threedimensionalmesostructuresashightemperaturegrowthtemplateselectroniccellularscaffoldsandselfpropelledmicrorobots |