Patterning two-dimensional free-standing surfaces with mesoporous conducting polymers

被引:0
作者
Shaohua Liu
Pavlo Gordiichuk
Zhong-Shuai Wu
Zhaoyang Liu
Wei Wei
Manfred Wagner
Nasser Mohamed-Noriega
Dongqing Wu
Yiyong Mai
Andreas Herrmann
Klaus Müllen
Xinliang Feng
机构
[1] School of Chemistry and Chemical Engineering,Department of Chemistry and Food Chemistry & Center for Advancing Electronics Dresden (cfaed)
[2] Shanghai Jiao Tong University,Department of Polymer Chemistry
[3] Technische Universität Dresden,undefined
[4] Zernike Institute for Advanced Materials,undefined
[5] University of Groningen,undefined
[6] Max-Planck-Institut für Polymerforschung,undefined
来源
Nature Communications | / 6卷
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摘要
The ability to pattern functional moieties with well-defined architectures is highly important in material science, nanotechnology and bioengineering. Although two-dimensional surfaces can serve as attractive platforms, direct patterning them in solution with regular arrays remains a major challenge. Here we develop a versatile route to pattern two-dimensional free-standing surfaces in a controlled manner assisted by monomicelle close-packing assembly of block copolymers, which is unambiguously revealed by direct visual observation. This strategy allows for bottom-up patterning of polypyrrole and polyaniline with adjustable mesopores on various functional free-standing surfaces, including two-dimensional graphene, molybdenum sulfide, titania nanosheets and even on one-dimensional carbon nanotubes. As exemplified by graphene oxide-based mesoporous polypyrrole nanosheets, the unique sandwich structure with adjustable pore sizes (5–20 nm) and thickness (35–45 nm) as well as enlarged specific surface area (85 m2 g−1) provides excellent specific capacitance and rate performance for supercapacitors. Therefore, this approach will shed light on developing solution-based soft patterning of given interfaces towards bespoke functions.
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