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具有可调节尺寸、组成、表面化学和近红外吸收的非常规途径制备均匀的空心半导体纳米粒子。

Unconventional Route to Uniform Hollow Semiconducting Nanoparticles with Tailorable Dimensions, Compositions, Surface Chemistry, and Near-Infrared Absorption.

机构信息

School of Materials Science and Engineering, Georgia Institute of Technology, Atlanta, GA, 30332, USA.

Department of Electrical and Computer Engineering, University of Virginia, Charlottesville, VA, 22904, USA.

出版信息

Angew Chem Int Ed Engl. 2017 Oct 9;56(42):12946-12951. doi: 10.1002/anie.201706182. Epub 2017 Aug 10.

Abstract

Despite impressive recent advances in the synthesis of lead chalcogenide solid nanoparticles, there are no examples of lead chalcogenide hollow nanoparticles (HNPs) with controlled diameter and shell thickness as current synthetic approaches for HNPs have inherent limitations associated with their complexity, inability to precisely control the dimensions, and limited possibilities with regard to applicable materials. Herein, we report on an unconventional strategy for crafting uniform lead chalcogenide (PbS and PbTe) HNPs with tailorable size, surface chemistry, and near-IR absorption. Amphiphilic star-like triblock copolymers [polystyrene-block-poly(acrylic acid)-block-polystyrene and polystyrene-block-poly(acrylic acid)-block-poly(3,4-ethylenedioxythiophene)] were rationally synthesized and exploited as nanoreactors for the formation of uniform PbS and PbTe HNPs. Compared to their solid counterparts, the near-IR absorption of the HNPs is blue-shifted owing to the hollow interior. This strategy can be readily extended to other types of intriguing low-band-gap HNPs for diverse applications.

摘要

尽管近年来在合成铅硫属化物(lead chalcogenide)实心纳米颗粒方面取得了令人瞩目的进展,但目前还没有铅硫属化物空心纳米颗粒(lead chalcogenide hollow nanoparticles,HNPs)的例子,这些空心纳米颗粒具有可控的直径和壳层厚度,因为当前的合成方法存在固有局限性,与其复杂性、无法精确控制尺寸以及适用材料的可能性有限有关。在此,我们报告了一种用于制造具有可定制尺寸、表面化学性质和近红外吸收的均匀铅硫属化物(PbS 和 PbTe)空心纳米颗粒的非常规策略。两亲性星形嵌段共聚物[聚苯乙烯-嵌段-聚(丙烯酸)-嵌段-聚苯乙烯和聚苯乙烯-嵌段-聚(丙烯酸)-嵌段-聚(3,4-亚乙基二氧噻吩)]被合理合成,并被用作形成均匀 PbS 和 PbTe 空心纳米颗粒的纳米反应器。与实心纳米颗粒相比,由于空心内部的存在,空心纳米颗粒的近红外吸收发生蓝移。这种策略可以很容易地扩展到其他类型的有趣的低带隙空心纳米颗粒,以实现多样化的应用。

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