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基于新型席夫碱配体的金属有机框架衍生的杂原子掺杂氧化镍杂化物用于高性能电致变色

Heteroatom-Doped Nickel Oxide Hybrids Derived from Metal-Organic Frameworks Based on Novel Schiff Base Ligands toward High-Performance Electrochromism.

作者信息

Zeng Zhiqiang, Peng Xiaohan, Zheng Jianming, Xu Chunye

机构信息

Hefei National Laboratory for Physical Sciences at the Microscale, CAS Key Laboratory of Soft Matter Chemistry, Department of Polymer Science and Engineering, University of Science and Technology of China, Hefei 230026, P.R. China.

出版信息

ACS Appl Mater Interfaces. 2021 Jan 27;13(3):4133-4145. doi: 10.1021/acsami.0c17031. Epub 2021 Jan 13.

Abstract

The tenets of coordination chemistry enable researchers to design and develop nanostructured materials based on metal-organic frameworks (MOFs). Herein, for the first time, we applied the Schiff base system to MOF derivatives as a strategy for the heteroatom introduction into carbon-based metal oxides toward electrochromic applications. The presented Ni-MOF thin films based on Schiff base ligands were prepared by a facile and economical reductive electrosynthesis approach, facilitating the scalable fabrication of large-size electrochromic films derived from MOFs. After the pyrolysis, the desired N-doped NiO@C (N-C@NiO) films can achieve a high cycling stability (500 cycles with 7% contrast attenuation) and coloration efficiency (80.18 cm/C) via different pyrolysis procedures. In addition, the one-step fabricated N-C@NiO shows an excellent ability of contrast modulation (68%@580 nm) with merely 3.6% transmittance at the colored state. These improvements in electrochromic properties are attributed to hierarchical porous heterostructures and influenced by the N/C ratio and C-N bonding configuration, indicating that N-C@NiO systems derived from Schiff base MOFs are promising for low-transmittance displays.

摘要

配位化学原理使研究人员能够设计和开发基于金属有机框架(MOF)的纳米结构材料。在此,我们首次将席夫碱体系应用于MOF衍生物,作为将杂原子引入碳基金属氧化物以用于电致变色应用的策略。基于席夫碱配体的Ni-MOF薄膜通过简便且经济的还原电合成方法制备,有利于可扩展地制造源自MOF的大尺寸电致变色薄膜。热解后,通过不同的热解程序,所需的N掺杂NiO@C(N-C@NiO)薄膜可实现高循环稳定性(500次循环,对比度衰减7%)和着色效率(80.18 cm/C)。此外,一步制备的N-C@NiO在580 nm处显示出优异的对比度调制能力(68%),在着色状态下的透过率仅为3.6%。电致变色性能的这些改善归因于分级多孔异质结构,并受N/C比和C-N键构型的影响,表明源自席夫碱MOF的N-C@NiO体系在低透过率显示器方面具有潜力。

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