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在4H晶相Au纳米带上外延生长非常规晶相4H-Pd基合金纳米结构用于高效甲醇电催化氧化
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作者 汪婕 刘贵高 +11 位作者 韵勤柏 周希琛 刘效治 陈也 程洪飞 葛一瑶 黄京韬 胡兆宁 陈博 范战西 谷林 张华 《物理化学学报》 SCIE CAS CSCD 北大核心 2023年第10期110-116,共7页
Pd基合金纳米材料通常具有传统的面心立方(fcc)晶相。本文以密排六方4H相Au(4H-Au)纳米带为模板,外延生长非常规4H晶相的PdFe、PdIr和PdRu,形成4H-Au@PdM(M=Fe、Ir和Ru)核壳合金纳米带。合成的4H-Au@PdFe纳米带被用于碱性环境中甲醇电... Pd基合金纳米材料通常具有传统的面心立方(fcc)晶相。本文以密排六方4H相Au(4H-Au)纳米带为模板,外延生长非常规4H晶相的PdFe、PdIr和PdRu,形成4H-Au@PdM(M=Fe、Ir和Ru)核壳合金纳米带。合成的4H-Au@PdFe纳米带被用于碱性环境中甲醇电催化氧化反应(MOR)的催化剂,表现出优越的质量活性(3.69 A·mgPd^(−1)),分别为Pt/C和Pd黑催化剂质量活性的2.4和10.5倍,也跻身于最好的Pd基和Pt基MOR电催化剂之列。这一策略为合理设计和可控合成具有非常规晶相的多金属纳米结构提供了策略,从而为深入研究多金属纳米结构晶相依赖的性质和应用提供了可能。 展开更多
关键词 纳米材料相工程 晶相 4H相 Pd基合金 甲醇氧化反应
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Rationally designed/constructed MnO_x/WO_3 anode for photoelectrochemical water oxidation
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作者 Xiaohu Cao Xiangyu Zang +2 位作者 xichen zhou Mindong Chen Yong Ding 《Chinese Chemical Letters》 SCIE CAS CSCD 2018年第6期811-814,共4页
Photoelectrocatalytic water splitting is an effective way to utilize the solar energy to solve the energy shortage.The valence band edge of WO3 located at 3V vs.normal hydrogen electrode(NHE),which can offer enough po... Photoelectrocatalytic water splitting is an effective way to utilize the solar energy to solve the energy shortage.The valence band edge of WO3 located at 3V vs.normal hydrogen electrode(NHE),which can offer enough potential to kinetically oxidize water for oxygen evolution reaction.However,water oxidation reaction kinetics is sluggish when only WO3 is used as the photoanode.It is highly desirable to use cocatalyst to promote the kinetics.Mn Oxloaded on the WO3 photoanode through photodeposition methods improves the photoelectrochemical water oxidation performance.A maximum photocurrent density of composite photoanode is achieved with a deposition time of 3 min,which is higher than that of pristine WO3 photoanode around 40%.Mn O2 is not only a cocatalyst for water splitting but also for improving oxidation selectivity.We tried to use two means to load Mn Oxon WO3 photoanode material.It is observed that loading a moderate amount of Mn Oxon the WO3 by photodeposition can promote the performance of the WO3 photoanode. 展开更多
关键词 Photoelectrochemical water oxidation Tungsten oxide Manganese oxide PHOTODEPOSITION Hydrothermal method
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