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高度结晶的中空环形铜磷硫化物阴离子交换:一种多功能阳离子交换纳米平台。

Highly Crystalline Hollow Toroidal Copper Phosphosulfide Anion Exchange: A Versatile Cation Exchange Nanoplatform.

作者信息

Hong Yongju, Kim Taekyung, Jo Jinhyoung, Kim Byeongyoon, Jin Haneul, Baik Hionsuck, Lee Kwangyeol

机构信息

Department of Chemistry and Research Institute for Natural Sciences, Korea University, Seoul 02841, Korea.

Korea Basic Science Institute (KBSI), Seoul 02841, Korea.

出版信息

ACS Nano. 2020 Sep 22;14(9):11205-11214. doi: 10.1021/acsnano.0c02891. Epub 2020 Jul 8.

Abstract

Postmodification of nanocrystals through cation exchange has been very successful in diversifying nanomaterial compositions while retaining the structural motif. Copper compound nanoparticles are particularly useful as templates because of inherent defects serving as effective cation diffusion routes and excellent cation mobility. Therefore, the development of shape-controlled multianion systems, such as copper phosphosulfide, can potentially lead to the formation of diverse metal phosphosulfide nanomaterials that have otherwise inaccessible compositions and structures. However, there is, to the best of our knowledge, no report on the shape-controlled synthesis of copper phosphosulfide nanoparticles because the introduction of the second anion to the metal compound might destroy the nanoparticle morphology and crystallinity due to the required high energy for anion diffusion and mixing. Herein, we report that it is feasible to transfer the structural motif of copper sulfide to copper phosphosulfide using tris(diethylamino)phosphine. The anion-mixed copper phosphosulfide in the form of a hollow toroid could provide a pathway to previously inaccessible phases and morphologies. We verified the versatility of a copper phosphosulfide hollow toroid as a cation-exchange template by the successful synthesis of cobalt, nickel, indium, and cadmium phosphosulfides as well as bimetallic cobalt-nickel phosphosulfide (CoNiPS) with a retained structural motif.

摘要

通过阳离子交换对纳米晶体进行后修饰,在保留结构 motif 的同时实现纳米材料组成的多样化方面非常成功。铜化合物纳米颗粒因其固有的缺陷作为有效的阳离子扩散途径以及出色的阳离子迁移率而特别适合作为模板。因此,形状可控的多阴离子体系(如硫磷化铜)的开发,有可能导致形成具有其他难以获得的组成和结构的多种金属硫磷化物纳米材料。然而,据我们所知,尚无关于硫磷化铜纳米颗粒形状可控合成的报道,因为将第二种阴离子引入金属化合物可能会由于阴离子扩散和混合所需的高能量而破坏纳米颗粒的形态和结晶度。在此,我们报道使用三(二乙氨基)膦将硫化铜的结构 motif 转移到硫磷化铜是可行的。中空环形的阴离子混合硫磷化铜可以为以前难以获得的相和形态提供一条途径。我们通过成功合成钴、镍、铟和镉的硫磷化物以及具有保留结构 motif 的双金属钴 - 镍硫磷化物(CoNiPS),验证了硫磷化铜中空环形作为阳离子交换模板的多功能性。

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