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首页> 外文期刊>Catalysis science & technology >Transformation of zincblende nanoparticles into wurtzite microrods by a dissolution-regrowth process: an intergrowth homojunction with enhanced photocatalytic activity
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Transformation of zincblende nanoparticles into wurtzite microrods by a dissolution-regrowth process: an intergrowth homojunction with enhanced photocatalytic activity

机译:转换的闪锌矿纳米颗粒纤锌矿型microrods dissolution-regrowth过程:一个共生同质结提高光催化活性

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摘要

We report the facile one-pot synthesis of a unique cadmium sulfide (CdS) intergrowth structure in the form of zincblende nanoparticle-decorated wurtzite microrods. The success of this preparation relies on a process involving both dissolution and regrowth. The growth of CdS crystals started from rapid generation of small zincblende nanoparticles, followed by dissolution of some nascent nanoparticles due to the strong alkalinity and relatively high reaction temperature. The resultant CdS monomers, capped by ethanediamine, nucleated again and went through further one-dimensional regrowth, leading to the formation of wurtzite microrods. This transformation gives rise to the generation of a novel intergrowth homojunction that consists of zincblende nanoparticle-decorated wurtzite microrods. Such a close contacted homojunction, having a type-II band alignment, shows an enhanced photocatalytic activity without loading any co-catalyst for solar hydrogen production in comparison to the use of either nanoparticles or microrods alone. This work not only enriches our knowledge on the fundamentals of homojunction formation, but also reveals an important fact that the intergrowth of a rationally designed junction structure shall bring about enhanced photocatalytic activity and thus deserves attention.
机译:我们报告一个独特的简单合成硫化镉(cd)共生结构闪锌矿nanoparticle-decorated的形式纤锌矿型microrods。准备依赖于一个涉及两个过程溶解和再生。晶体从快速代小闪锌矿纳米颗粒,然后解散一些新兴的纳米粒子由于强劲碱度和相对较高的反应温度。ethanediamine,又有核通过进一步的一维再生,领先纤锌矿型microrods的形成。转换产生的一代由小说共生同质结闪锌矿nanoparticle-decorated纤锌矿型microrods。二型乐队对齐,显示了一个提高光催化活性没有加载任何co-catalyst太阳能制氢使用纳米粒子或比较microrods孤单。同质结的基础知识形成,但也揭示了一个重要的事实设计合理的共生结结构应当带来提高光催化活性,因此值得的关注。

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