超分子化学
化学物理
质子
自组装
热传导
纳米技术
材料科学
质子输运
导电体
分子动力学
从头算
相(物质)
结晶学
化学
计算化学
晶体结构
物理
有机化学
复合材料
量子力学
作者
Zhenyu Yang,Ningjin Zhang,Lei Lei,Chunyang Yu,Junjie Ding,Pan Li,Jiaolong Chen,Ming Li,Sanliang Ling,Jinhui Zhu,Shaodong Zhang
出处
期刊:JACS Au
[American Chemical Society]
日期:2022-03-21
卷期号:2 (4): 819-826
被引量:28
标识
DOI:10.1021/jacsau.1c00556
摘要
Proton conduction is vital for living systems to execute various physiological activities. The understanding of its mechanism is also essential for the development of state-of-the-art applications, including fuel-cell technology. We herein present a bottom-up strategy, that is, the self-assembly of Cage-1 and -2 with an identical chemical composition but distinct structural features to provide two different supramolecular conductors that are ideal for the mechanistic study. Cage-1 with a larger cavity size and more H-bonding anchors self-assembled into a crystalline phase with more proton hopping pathways formed by H-bonding networks, where the proton conduction proceeded via the Grotthuss mechanism. Small cavity-sized Cage-2 with less H-bonding anchors formed the crystalline phase with loose channels filled with discrete H-bonding clusters, therefore allowing for the translational diffusion of protons, that is, vehicle mechanism. As a result, the former exhibited a proton conductivity of 1.59 × 10-4 S/cm at 303 K under a relative humidity of 48%, approximately 200-fold higher compared to that of the latter. Ab initio molecular dynamics simulations revealed distinct H-bonding dynamics in Cage-1 and -2, which provided further insights into potential proton diffusion mechanisms. This work therefore provides valuable guidelines for the rational design and search of novel proton-conducting materials.
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