arrow
返回

Selenium-Containing Dynamic Materials: Structure Programming through Selective Dissipation

delete2024-04-25
delete2
PRE
AI
谭
谭以正 (Yizheng Tan)
许华平 封面图
许华平 (Huaping Xu) *
DOI:10.1021/accountsmr.4c00065delete
delete原文链接
delete原文求助
delete分享
delete收藏
摘要

摘要

En 中文
The success of living systems lies in using mild conditions to construct diverse structures by reducing energy barriers that need to be overcome. However, the most powerful processing methods developed by humans, such as integrated die casting and additive manufacturing, are either energy-consuming or time-consuming. Hence, it is very attractive and environmentally friendly to use simple, prebuilt, programmable components and transform them into structures with various functions by using mild processing methods. Dynamic covalent bonds, which can transform the entire structure by breaking a few low-energy bonds in the material, reduce the energy required to be input and dissipated when constructing ordered structures, making them an important tool for developing programmable materials with mild processing conditions. The challenges in this field lie in improving the accessibility, efficiency, and batch-processing capability. The establishment of order relies critically on selective energy input or dissipation. In this context, order refers to a thermodynamic state that deviates from equilibrium, exemplified by a temperature gradient or specific spatial distribution of particles, which simultaneously increases systemic order and reduces entropy. To forge such ordered systems or structures, energy input or dissipation must be selective rather than uniform. However, selectivity necessitates patterned inputs or stimuli, such as digital light processing, templating, or additive manufacturing, which are inherently customized and thus not readily scalable for mass industrial production. Consequently, the pivotal solution lies in minimizing the reliance on patterned stimuli. For example, the accessibility and scalability of flood illumination are superior to digital light processing. Concurrently, when reducing the usage of patterned stimuli, we need to increase the dissipation rate between multiple materials that can be integrated together to construct ordered structures, which is an essential aspect for improving efficiency. This Account summarizes how our research group uses the dissipative characteristics of selenium and the information density of light to achieve selective energy input and dissipation in two-dimensional plane and three-dimensional space. In this process, we propose a series of unique strategies for ordered structure programming, such as interfacial, unconstrained, or modular methods. These methods either reduce the usage of patterned stimuli, or improve the efficiency, and ultimately reduce the time of structure programming with nonpatterned stimuli to within minutes. Moreover, we also look forward from the perspective of chemical design to illustrate how selenium and its derived dynamic covalent bonds can accelerate the rate of energy dissipation, increase the difference of dissipation rate between the dissipation and nondissipation areas, and further reduce the time required to structure programming to within seconds.
Keyword:
DISELENIDE-CONTAINING POLYMER
VISIBLE-LIGHT
SHAPE-MEMORY
PLASTICITY
STRESS
BOND

期刊

Accounts of Materials Research 封面图
Accounts of Materials Research
IF:
14.7
论文数:
644
被引数:
5.2K

机构

T
tsinghua university
学者数:
11.9W
论文数: 10.0W
被引数: 137
引用论文

引用论文

err分享
err收藏
Programming origami-like soft actuators using visible light
errMATTER
IF17.5
err2021-05-01
err5
PREAI
errDanielson, Mary K.; Barnes, Jonathan C.
err分享
err收藏
Dynamic Fluorescent Patterning Based on Visible-Light-Responsive Diselenide Metathesis
err2022-10-18
err3
PREAI
errSi, Jinyan; Zhao, Peng; Guan, Jun; Ji, Shaobo; Xu, Huaping
err分享
err收藏
Direct laser writing of three-dimensional photonic-crystal templates for telecommunications
err2004-06-13
err1.1K
PREAI
errDeubel, M; Von Freymann, G; Wegener, M; Pereira, S; Busch, K; Soukoulis, CM
err分享
err收藏
Direct 2D-to-3D transformation of pen drawings
err2021-03-26
err31
errOAAI
errSong, Seo Woo; Lee, Sumin; Choe, Jun Kyu; Kim, Na-Hyang; Kang, Junwon; Lee, Amos Chungwon; Choi, Yeongjae; Choi, Ahyoun; Jeong, Yunjin; Lee, Wooseok; Kim, Ju-Young; Kwon, Sunghoon; Kim, Jiyun
err分享
err收藏
学者 查看更多内容