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AgBrⅠ核壳乳剂的还原敏化与硫加金敏化的协同增感效应 被引量:2
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作者 智欣 史瑶 +1 位作者 曹静 夏培杰 《感光科学与光化学》 SCIE EI CAS CSCD 北大核心 2004年第5期350-356,共7页
使用微机控制的双注仪和二次乳化方法制备了一系列在AgBrⅠ核内进行不同程度还原增感的溴碘化银/溴化银核壳乳剂.对这些乳剂感光性能的研究表明:1)颗粒内部经还原敏化或Ag2掺杂的乳剂表现出明显的增感效应,颗粒内碘离子的存在并不影响Ag... 使用微机控制的双注仪和二次乳化方法制备了一系列在AgBrⅠ核内进行不同程度还原增感的溴碘化银/溴化银核壳乳剂.对这些乳剂感光性能的研究表明:1)颗粒内部经还原敏化或Ag2掺杂的乳剂表现出明显的增感效应,颗粒内碘离子的存在并不影响Ag2的增感作用;2)在对乳剂进行了颗粒表面的硫加金增感以后,在一定的DMAB用量下,观察到显著的颗粒内部还原增感和表面硫加金增感的协同增感效应,使乳剂的感光度有了成倍的增长.以上协同增感效应的结果再次说明,颗粒内部的还原敏化中心与颗粒表面的硫加金敏化中心具有两种不同的增感机理,前者捕获空穴,后者捕获电子,两者都有利于提高潜影的形成效率. 展开更多
关键词 空穴—电子转换 AgBrⅠ核壳乳剂 Ag2掺杂 S+Au增感 协同增感
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Bi2WO6 quantum dot-intercalated ultrathin montmo- rillonite nanostructure and its enhanced photocatalytic performance 被引量:10
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作者 Songmei Sun Wenzhong Wang +4 位作者 Dong Jiang Ling Zhang Xiaoman Li Yali Zheng Qi An 《Nano Research》 SCIE EI CAS CSCD 2014年第10期1497-1506,共10页
The kinetic competition between electron-hole recombination and water oxidation is a key limitation for the development of efficient solar water splitting materials. In this study, we present a solution for solving th... The kinetic competition between electron-hole recombination and water oxidation is a key limitation for the development of efficient solar water splitting materials. In this study, we present a solution for solving this challenge by constructing a quantum dot-intercalated nanostructure. For the first time, we show the interlayer charge of the intercalated nanostructure can significantly inhibit the electron-hole recombination in photocatalysis. For Bi2WO6 quantum dots (QDs) intercalated in a montmorillonite (MMT) nanostructure as an example, the average lifetime of the photogenerated charge carriers was increased from 3.06 μs to 18.8 Ds by constructing the intercalated nanostructure. The increased lifetime markedly improved the photocatalytic performance of Bi2WO6 both in solar water oxidation and environmental purification. This work not oMy provides a method to produce QD-intercalated ultrathin nanostructures but also a general route to design efficient semiconductor-based photoconversion materials for solar fuel generation and environmental purification. 展开更多
关键词 photocatalysis lifetime ammonia degradation water oxidation montmorillonite exfoliation
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