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一种宽带隙半导体镁水凝胶:水分收集、碘螯合及电阻开关

A Wide Bandgap Semiconducting Magnesium Hydrogel: Moisture Harvest, Iodine Sequestration, and Resistive Switching.

作者信息

Alam Noohul, Majumder Shantanu, Ray Soumya Jyoti, Sarma Debajit

机构信息

Department of Chemistry, Indian Institute of Technology Patna, Bihar 801106, India.

Department of Physics, Indian Institute of Technology Patna, Bihar 801106, India.

出版信息

Langmuir. 2022 Aug 30;38(34):10601-10610. doi: 10.1021/acs.langmuir.2c01464. Epub 2022 Aug 17.

Abstract

Water harvesting from the ubiquitous moisture is pivotal for delivering fresh water to earth's arid/semiarid regions, and sequestration of iodine from the solution is crucial for environmental safety due to its severe effect on human metabolic processes. In this context, herein, a multifunctional supramolecular metallohydrogel (Mg@TAEA) is synthesized through direct mixing of magnesium nitrate hexahydrate and the low molecular weight gelator tris(2-aminoethyl)amine. Electron microscopy reveals that Mg@TAEA is sculptured in vertically grown well-oriented micrometer-sized flakes. The porous crystalline material (52 m/g) was found to be an efficacious host matrix for water harvesting from moisture (847 mg/g). Mg@TAEA shows effective (513 mg/g) iodine sequestration from solution and adsorption of carbon dioxide (15 mg/g). The wide bandgap semiconducting Mg@TAEA (3.6 eV) material is a potential candidate for building memory devices, and the / ratio of the device based on the indium tin oxide (ITO)/Mg@TAEA/Ag heterostructure was found to be ∼62. We further extended our work by analyzing the charge transport properties of the system and found space charge limited conduction (SCLC) and trap-filled SCLC to be responsible for the nonlinear transport behavior observed in the device.

摘要

从无处不在的湿气中收集水分对于向地球干旱/半干旱地区输送淡水至关重要,而从溶液中螯合碘对于环境安全至关重要,因为它对人体代谢过程有严重影响。在此背景下,本文通过将六水合硝酸镁与低分子量凝胶剂三(2-氨基乙基)胺直接混合合成了一种多功能超分子金属水凝胶(Mg@TAEA)。电子显微镜显示,Mg@TAEA是由垂直生长的取向良好的微米级薄片构成。发现该多孔晶体材料(52 m/g)是从湿气中收集水分(847 mg/g)的有效主体基质。Mg@TAEA从溶液中螯合碘的效果显著(513 mg/g),并且对二氧化碳有吸附作用(15 mg/g)。宽带隙半导体Mg@TAEA(3.6 eV)材料是构建存储器件的潜在候选材料,基于氧化铟锡(ITO)/Mg@TAEA/Ag异质结构的器件的/ 比率约为62。我们通过分析该系统的电荷传输特性进一步拓展了工作,发现空间电荷限制传导(SCLC)和陷阱填充SCLC是器件中观察到的非线性传输行为的原因。

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