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用于在碳纳米纤维上装饰钯颗粒并实现快速电导率变化的化学沉积方法。

The Chemical Deposition Method for the Decoration of Palladium Particles on Carbon Nanofibers with Rapid Conductivity Changes.

作者信息

Lee Hoik, Phan Duy-Nam, Kim Myungwoong, Sohn Daewon, Oh Seong-Geun, Kim Seong Hun, Kim Ick Soo

机构信息

Nano Fusion Technology Research Group, Division of Frontier Fibers, Institute for Fiber Engineering (IFES), Interdisciplinary Cluster for Cutting Edge Research (ICCER), Shinshu University, Tokida 3-15-1, Ueda, Nagano 386-8567, Japan.

Department of Chemistry, Inha University, Incheon 22212, Korea.

出版信息

Nanomaterials (Basel). 2016 Nov 29;6(12):226. doi: 10.3390/nano6120226.

Abstract

Palladium (Pd) metal is well-known for hydrogen sensing material due to its high sensitivity and selectivity toward hydrogen, and is able to detect hydrogen at near room temperature. In this work, palladium-doped carbon nanofibers (Pd/CNFs) were successfully produced in a facile manner via electrospinning. Well-organized and uniformly distributed Pd was observed in microscopic images of the resultant nanofibers. Hydrogen causes an increment in the volume of Pd due to the ability of hydrogen atoms to occupy the octahedral interstitial positions within its face centered cubic lattice structure, resulting in the resistance transition of Pd/CNFs. The resistance variation was around 400%, and it responded rapidly within 1 min, even in 5% hydrogen atmosphere conditions at room temperature. This fibrous hybrid material platform will open a new and practical route and stimulate further researches on the development of hydrogen sensing materials with rapid response, even to low concentrations of hydrogen in an atmosphere.

摘要

钯(Pd)金属作为一种氢传感材料而闻名,因为它对氢气具有高灵敏度和选择性,并且能够在接近室温的条件下检测氢气。在这项工作中,通过静电纺丝以简便的方式成功制备了钯掺杂的碳纳米纤维(Pd/CNFs)。在所得纳米纤维的微观图像中观察到组织良好且均匀分布的钯。由于氢原子能够占据其面心立方晶格结构中的八面体间隙位置,氢气会导致钯的体积增加,从而导致Pd/CNFs的电阻转变。电阻变化约为400%,即使在室温下5%氢气气氛条件下,它也能在1分钟内迅速响应。这种纤维状混合材料平台将开辟一条新的实用途径,并激发对开发具有快速响应的氢传感材料的进一步研究,甚至是对大气中低浓度氢气的检测。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/2d4b/5302716/3dd32c8af224/nanomaterials-06-00226-g001.jpg

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