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Coordination Complex Transformation-Assisted Fabrication for Hollow Chestnut-Like Hierarchical ZnS with Enhanced Photocatalytic Hydrogen Evolution

机译:具有增强光催化氢释放能力的空心板栗状ZnS配位配合物转化辅助制备

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摘要

Hierarchical nanostructures (HNs) are possibly endowed with novel properties due to their complex three-dimensional (3D) structures. Here, we provide a novel stepwise growth strategy of Coordination Complex Transformation-Assisted Growth for fabricating HNs. By using this, we prepare a new wurtzite ZnS HNs-hollow chestnut-like hierarchical microspheres (HCHMs), which are mesoporous hollow microspheres with single crystalline nanorods arrayed densely and radially from the centre. The HCHMs formation depends on the stepwise decomposition of the two Zn2+ complexes ([Zn(en)m(H2O)2(3−m)]2+ and [Zn(en)m(NH3)2(3−m)]2+, natural number m < 3). As the reaction proceeds, [Zn2+] has been distinctly reduced due to the transformation from [Zn(en)m(H2O)2(3−m)]2+ to [Zn(en)m(NH3)2(3−m)]2+ with a high stability constant, leading to a low crystal growth rate to obtain single crystalline nanorods. Additionally, the generated bubbles (CO2, NH3) acting as a template can induce the generation of hollow structure. The as-prepared ZnS HCHMs show an enhanced photocatalytic hydrogen evolution activity due to the single crystalline wurtzite phase and the high surface area contributed by the hollow hierarchical structures, as well as the mesoporosity. The versatility of the coordination complex transformation-assisted growth strategy will open up new possibilities for fabricating HNs, especially for those transition metal ions with excellent complex capabilities.
机译:分层纳米结构(HNs)可能由于其复杂的三维(3D)结构而具有新颖的特性。在这里,我们提供了用于制造HN的配位配合物转化辅助生长的新型分步生长策略。通过使用这种方法,我们制备了一种新的纤锌矿型ZnS HNs-空心栗子状分层微球(HCHMs),它们是介孔的空心微球,其单晶纳米棒从中心密集且径向排列。 HCHMs的形成取决于两个Zn 2 + 配合物([Zn(en)m(H2O)2(3-m)] 2 + 和[ Zn(en)m(NH3)2(3-m)] 2 + ,自然数m <3)。随着反应的进行,由于[Zn(en)m(H2O)2(3-m)] 2 + 2 + ]已被明显还原。 >稳定常数高到[Zn(en)m(NH3)2(3-m)] 2 + ,导致晶体生长速率低,从而获得单晶纳米棒。此外,所产生的气泡(CO2,NH3)充当模板可诱导中空结构的产生。制备的ZnS HCHMs具有增强的光催化氢析出活性,这归因于单晶纤锌矿相和中空分层结构以及介孔率所贡献的高表面积。配位络合物转化辅助生长策略的多功能性将为制造HNs开辟新的可能性,特别是对于那些具有出色的复杂功能的过渡金属离子。

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