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钯/铋/铜分级纳米结构用于高效析氢和稳定氢气检测。

Palladium/Bismuth/Copper Hierarchical Nano-Architectures for Efficient Hydrogen Evolution and Stable Hydrogen Detection.

机构信息

Tianjin Key Laboratory of Optoelectronic Sensor and Sensing Network Technology and Department of Electronics, College of Electronic Information and Optical Engineering , Nankai University , Tianjin 300350 , P. R. China.

出版信息

ACS Appl Mater Interfaces. 2019 Feb 13;11(6):6248-6256. doi: 10.1021/acsami.8b19770. Epub 2019 Feb 5.

Abstract

Efficient, stable electrode catalysts and advanced hydrogen sensing materials are the core of the hydrogen production and hydrogen detection for guaranteeing the safe issues. Although a universal material to achieve the above missions is highly desirable, it remains challenging. Here, we report palladium/bismuth/copper hierarchical nanoarchitectures (Pd/Bi/Cu HNAs) for advanced dual-applications toward hydrogen evolution reaction (HER) and hydrogen detection, via first electrodeposition of cylindrical nanowires and subsequent wet-chemical etching art. For HER, the Pd/Bi/Cu HNAs present the overpotential (79 mV at 10 mA) and tafel slope (61 mV dec) closing to those of Pt/C. For hydrogen detection, the Pd/Bi/Cu HNAs was able to work at a wide-temperature range (∼156-418 K), and remarkably, their critical temperature (∼156 K) of the "reversing sensing behavior" is much lower than that of pure Pd nanowires (278 K). These excellent performances are ascribed to the synergic effect of hierarchical morphology induced more exposure of Pd, and the Pd d-band modification via Cu and Bi dopants. It is feasible that Pd/Bi/Cu HNAs serve as universal materials for both efficient catalysts toward hydrogen evolution via water electrolysis and wide-temperature adapted hydrogen detection.

摘要

高效、稳定的电极催化剂和先进的氢气传感材料是保障制氢和氢气检测安全问题的核心。虽然人们非常希望有一种通用的材料来实现上述目标,但这仍然具有挑战性。在这里,我们通过首次电沉积圆柱纳米线和随后的湿法化学刻蚀工艺,报告了钯/铋/铜分级纳米结构(Pd/Bi/Cu HNAs)在先进的析氢反应(HER)和氢气检测双重应用中的应用。对于 HER,Pd/Bi/Cu HNAs 的过电势(在 10 mA 时为 79 mV)和塔菲尔斜率(61 mV dec)接近 Pt/C。对于氢气检测,Pd/Bi/Cu HNAs 能够在较宽的温度范围内(156-418 K)工作,值得注意的是,其“反转传感行为”的临界温度(156 K)远低于纯 Pd 纳米线(278 K)。这些优异的性能归因于分层形貌诱导的 Pd 更多暴露的协同效应,以及 Cu 和 Bi 掺杂剂对 Pd d 带的修饰。Pd/Bi/Cu HNAs 有望成为通过水电解高效析氢的通用催化剂和适用于宽温度范围的氢气检测的通用材料。

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