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无机-有机杂化层状半导体AgSePh:准溶液合成、光学性质及热解行为

Inorganic-Organic Hybrid Layered Semiconductor AgSePh: Quasi-Solution Synthesis, Optical Properties, and Thermolysis Behavior.

作者信息

Gu Kewei, Wang Tingting, Yang Guowei, Yu Nan, Du Chengchao, Wang Junli

机构信息

School of Materials Science & Engineering, Jiangsu University, Zhenjiang 212013, PR China.

出版信息

Inorg Chem. 2024 Apr 8;63(14):6465-6473. doi: 10.1021/acs.inorgchem.4c00343. Epub 2024 Mar 25.

DOI:10.1021/acs.inorgchem.4c00343
PMID:38528435
Abstract

Two-dimensional inorganic-organic hybrid layered semiconductors are actively studied because of their naturally formed multiquantum well (MQW) structures and associated optical, photoelectric, and quantum optics characteristics. Silver benzeneselenolate (AgSePh, Ph = CH) is a new member of such hybrid layered materials, but has not fully been exploited. Herein, we present a quasi-solution method to prepare high quality free-standing AgSePh flake-like microcrystals by reacting diphenyl diselenide (PhSe) with silver nanoparticles. The resultant AgSePh microflakes exhibit room-temperature (RT) resolvable MQW-induced quasi-particle quantization and interesting optical properties, such as three distinct excitonic resonance absorptions X (2.67 eV), X (2.71 eV), and X (2.83 eV) in the visible region, strong narrow-line width blue photoluminescence at ∼2.64 eV (470 nm) from the radiative recombination of the X exciton state, and a large exciton binding energy (∼0.35 eV). Furthermore, AgSePh microcrystals show high stability under water, oxygen, and heat environments, while above 220 °C, they will thermally decompose to silver and PhSe as evidenced by a combination of thermogravimetry and differential scanning calorimetry and pyrolysis-coupled gas chromatography-mass spectrometry studies. Finally, a comparison is extended between AgSePh and other metal benzeneselenolates, benzenethiolates, and alkanethiolates to clarify differences in their solubility, decomposition/melting temperature, and pyrolytic products.

摘要

二维无机-有机杂化层状半导体因其天然形成的多量子阱(MQW)结构以及相关的光学、光电和量子光学特性而受到广泛研究。苯硒酸银(AgSePh,Ph = CH)是这类杂化层状材料的新成员,但尚未得到充分利用。在此,我们提出一种准溶液法,通过二苯基二硒化物(PhSe)与银纳米颗粒反应制备高质量的独立式AgSePh片状微晶。所得的AgSePh微片在室温下表现出可分辨的MQW诱导的准粒子量子化以及有趣的光学性质,例如在可见光区域有三个不同的激子共振吸收峰X(2.67 eV)、X(2.71 eV)和X(2.83 eV),X激子态辐射复合产生的约2.64 eV(470 nm)处的强窄线宽蓝色光致发光,以及较大的激子结合能(约0.35 eV)。此外,AgSePh微晶在水、氧气和热环境下表现出高稳定性,而在220°C以上,它们会热分解为银和PhSe,热重分析、差示扫描量热法以及热解耦合气相色谱-质谱研究证实了这一点。最后,对AgSePh与其他苯硒酸金属盐、苯硫醇盐和链烷硫醇盐进行了比较,以阐明它们在溶解度、分解/熔化温度和热解产物方面的差异。

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