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Magic-sized 团簇在 CdSe 纳米棒合成中的作用。

Role of magic-sized clusters in the synthesis of CdSe nanorods.

机构信息

University of California, Merced, 5200 North Lake Road, Merced, California 95344, USA.

出版信息

ACS Nano. 2010 Mar 23;4(3):1561-72. doi: 10.1021/nn100076f.

DOI:10.1021/nn100076f
PMID:20192241
Abstract

The dynamics of the CdSe nanorod synthesis reaction have been studied, giving attention to the kinetics of magic-sized clusters (MSCs) that form as intermediates in the overall reaction. The MSCs have a distinct absorption peak, and the kinetics of this peak give insight into the overall reaction mechanism. In these studies, the reaction mixture consists primarily of Cd(phosphonate)(2) and trioctyl phosphine selenium in a solution of trioctylphosphine (TOP) and trioctylphosphine oxide (TOPO). We find that the rate at which precursors react to form CdSe monomers and the rates at which monomers react to form nanoparticles can be varied by changing the chemistry of the reaction mixture. Decreasing the TOP concentration decreases the extent to which selenium is bound, both in the precursors and on the particles' surfaces, and thereby increases both the precursor to monomer and monomer to particle reaction rates. Decreasing the phosphonate concentration decreases the extent to which phosphonate binds cadmium in the precursors and on the surface of the nanoparticles, also increasing the rates of both reactions. This is also accomplished by the addition of inorganic acids which protonate the phosphonates. The presence of inorganic acids (impurities) is the primary reason that the overall synthesis reaction is faster in solutions made with technical grade rather than purified TOPO. The TOP and phosphonic acid concentrations are coupled because excess phosphonic acids react with TOP, forming TOPO and less strongly binding species, specifically phosphinic acids, phosphine oxides, and phosphines.

摘要

已经研究了 CdSe 纳米棒合成反应的动力学,特别关注作为整个反应中间体形成的魔术尺寸簇 (MSC) 的动力学。MSC 具有独特的吸收峰,该峰的动力学为整体反应机制提供了深入了解。在这些研究中,反应混合物主要由 Cd(膦酸酯)(2)和三辛基膦硒在三辛基膦 (TOP) 和三辛基氧化膦 (TOPO) 的溶液中组成。我们发现,通过改变反应混合物的化学性质,可以改变前体反应形成 CdSe 单体的速率以及单体反应形成纳米颗粒的速率。降低 TOP 浓度会降低硒在两种前体和颗粒表面的结合程度,从而提高前体到单体和单体到颗粒的反应速率。降低膦酸盐浓度会降低膦酸盐在两种前体和纳米颗粒表面结合镉的程度,也会提高两种反应的速率。通过添加质子化膦酸盐的无机酸也可以达到同样的效果。无机酸(杂质)的存在是整个合成反应在使用工业级而不是纯化的 TOPO 制成的溶液中更快的主要原因。TOP 和膦酸的浓度是耦合的,因为过量的膦酸与 TOP 反应,形成 TOPO 和结合较弱的物质,特别是亚磷酸、氧化膦和膦。

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