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Published in 2021 at "Advanced materials"
DOI: 10.1002/adma.202006111
Abstract: Soft ionic conductors, such as hydrogels and ionogels, have enabled stretchable and transparent ionotronics, but they suffer from key limitations inherent to the liquid components, which may leak and evaporate. Here, novel liquid-free ionic conductive…
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Keywords:
robust versatile;
liquid free;
elastomer;
free ionic ... See more keywords
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Published in 2022 at "Advanced Science"
DOI: 10.1002/advs.202205590
Abstract: Silicon is expected to become the ideal anode material for the next generation of high energy density lithium battery because of its high theoretical capacity (4200 mAh g−1). However, for silicon electrodes, the initial coulombic…
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Keywords:
highly ionic;
capacity;
ionic conductive;
slidable highly ... See more keywords
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Published in 2022 at "Small"
DOI: 10.1002/smll.202203045
Abstract: Alkali metals are regarded as the most promising candidates for advanced anode for the next-generation batteries due to their high specific capacity, low electrochemical potential, and lightweight. However, critical problems of the alkali metal anodes,…
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Keywords:
ionic conductive;
deposition;
interface;
metal anodes ... See more keywords
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Published in 2020 at "Chemical Engineering Journal"
DOI: 10.1016/j.cej.2020.127637
Abstract: Abstract The construction of a surface-wrinkled ionic conductive hydrogel with highly stretchable and healable properties for a skin-inspired pressure sensor is desirable yet challenging. Here, a stretching/competitively-coordinating/releasing (SCR) strategy is presented for preparing a self-buckled…
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Keywords:
motion;
detection;
stretchable healable;
pressure sensor ... See more keywords
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Published in 2022 at "ACS applied materials & interfaces"
DOI: 10.1021/acsami.1c22602
Abstract: The construction of solvent-free ionic conductive elastomers with high mechanical stretchability and large dynamic reversibility of chain segments is highly desired yet challenging. Here, a hierarchical response network strategy is presented for preparing highly stretchable…
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Keywords:
hierarchical response;
response network;
ionic conductive;
stretchability ... See more keywords
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Published in 2022 at "ACS applied materials & interfaces"
DOI: 10.1021/acsami.2c07963
Abstract: The requirement of ionic conductive hydrogels with tailor-made superelasticity and high chain mobility is highly desired while meeting a challenge. Herein, ionic conductive hydrogels with the design of strong-weak response networks were synthesized via the…
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Keywords:
ionic sensors;
ionic conductive;
conductive hydrogels;
weak response ... See more keywords
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Published in 2022 at "ACS applied materials & interfaces"
DOI: 10.1021/acsami.2c15356
Abstract: Artificial intelligence (AI) has become increasingly popular along with the development of the bionic neural system. Ionic conductors play an important role in the AI system due to the ability of bionic sensing and signal…
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Keywords:
deep eutectic;
conductive polyurethane;
ionic conductive;
solvent ... See more keywords
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Published in 2022 at "ACS applied materials & interfaces"
DOI: 10.1021/acsami.2c18954
Abstract: Ionic conductive elastomers (ICEs) are emerging stretchable and ionic conductive materials that are solvent-free and thus demonstrate excellent thermal stability. Three-dimensional (3D) printing that creates complex 3D structures in free forms is considered as an…
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Keywords:
dimensional printing;
ice;
ionic conductive;
conductive elastomers ... See more keywords
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Published in 2023 at "ACS applied materials & interfaces"
DOI: 10.1021/acsami.3c00386
Abstract: Recent advancements in wearable electronic technology demand advanced power sources to be flexible, deformable, durable, and sustainable. An ionic-solution-modified conductive hydrogel-based triboelectric nanogenerator (TENG) has advantages in wearable devices. However, fabricating a conductive hydrogel with…
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Keywords:
hydrogel;
ionic conductive;
energy;
conductive hydrogel ... See more keywords
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Published in 2023 at "ACS applied materials & interfaces"
DOI: 10.1021/acsami.3c01585
Abstract: Liquid-free ionic conductive elastomers (ICEs) are ideal materials for wearable strain sensors in increasingly flexible electronic devices. However, developing recyclable ICEs with high elasticity, self-healability, and recyclability is still a great challenge. In this study,…
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Keywords:
ionic conductive;
liquid free;
conductive elastomers;
strain ... See more keywords
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Published in 2023 at "ACS applied materials & interfaces"
DOI: 10.1021/acsami.3c04187
Abstract: Multifunctional flexible sensors are the development trend of wearable electronic devices in the future. As the core of flexible sensors, the key is to construct a stable multifunctional integrated conductive elastomer. Here, ionic conductive elastomers…
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Keywords:
self wrinkling;
phase separation;
ionic conductive;
situ phase ... See more keywords