Peng Xuwen, Cui Zelin, Bai Xuefeng, Lv Hongfei
School of Chemistry and Material Science, Heilongjiang University, Harbin 150080, People's Republic of China.
Institute of Petrochemistry, Heilongjiang Academy of Sciences, Harbin 150040, People's Republic of China.
IET Nanobiotechnol. 2018 Dec;12(8):1031-1036. doi: 10.1049/iet-nbt.2018.5159.
The bio-synthesis of palladium nanocubes (PdNCs) was realised using pine needle extract as the reducing agent and cetyl trimethyl ammonium bromide as the capping agent. As an eco-friendly and readily available biomass, pine needle extract avoided the use of highly polluting chemical reducing agents. The growth process of PdNCs was analysed using ultraviolet-vis and Fourier transform infrared spectroscopy. Flavonoids, esters, terpenoids and polyhydric alcohols, which contain reductive groups, were mainly responsible for the transition of Pd ions to PdNCs. The morphology and structure of PdNCs were characterised using transmission electron microscopy (TEM), high-resolution TEM, selected area electron diffraction and X-ray diffraction. It was indicated that the as-prepared PdNCs displayed a relatively high purity and good crystallinity with a face-centred cubic structure and exhibited sizes ranging from 6.11 to 29.51 nm with an average particle size of 11.18 nm. In the methanol electro-oxidation reaction, the PdNCs enclosed by {100} facets exhibited superior electro-catalytic activity to commercial Pd/C, which was rarely reported in other bio-synthesis processes for Pd catalysts. Meanwhile, the PdNCs showed excellent anti-poisoning ability and long-term stability. This study reveals the possibility of preparing shape-controlled PdNCs with a specific structure and excellent electro-catalytic activity.
以松针提取物为还原剂、十六烷基三甲基溴化铵为封端剂实现了钯纳米立方体(PdNCs)的生物合成。作为一种环保且易于获得的生物质,松针提取物避免了使用高污染的化学还原剂。利用紫外可见光谱和傅里叶变换红外光谱分析了PdNCs的生长过程。含有还原基团的黄酮类、酯类、萜类和多元醇类物质主要负责将钯离子转化为PdNCs。使用透射电子显微镜(TEM)、高分辨率TEM、选区电子衍射和X射线衍射对PdNCs的形貌和结构进行了表征。结果表明,所制备的PdNCs具有较高的纯度和良好的结晶度,呈面心立方结构,尺寸范围为6.11至29.51 nm,平均粒径为11.18 nm。在甲醇电氧化反应中,由{100}面所包围的PdNCs表现出优于商业Pd/C的电催化活性,这在其他钯催化剂的生物合成过程中鲜有报道。同时,PdNCs表现出优异的抗中毒能力和长期稳定性。本研究揭示了制备具有特定结构和优异电催化活性的形状可控PdNCs的可能性。