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胶体 PbS 量子点在预期体相行为波长处的量子限制和增强的光吸收。

Quantum-Confined and Enhanced Optical Absorption of Colloidal PbS Quantum Dots at Wavelengths with Expected Bulk Behavior.

机构信息

Dipartimento di Matematica e Fisica 'E. De Giorgi', Università del Salento , via per Arnesano, 73100 Lecce, Italy.

NANOTEC-CNR Istituto di Nanotecnologia , via per Arnesano, 73100 Lecce, Italy.

出版信息

Nano Lett. 2017 Feb 8;17(2):1248-1254. doi: 10.1021/acs.nanolett.6b05087. Epub 2017 Jan 11.

Abstract

Nowadays it is well-accepted to attribute bulk-like optical absorption properties to colloidal PbS quantum dots (QDs) at wavelengths above 400 nm. This assumption permits to describe PbS QD light absorption by using bulk optical constants and to determine QD concentration in colloidal solutions from simple spectrophotometric measurements. Here we demonstrate that PbS QDs experience the quantum confinement regime across the entire near UV-vis-NIR spectral range, therefore also between 350 and 400 nm already proposed to be sufficiently far above the band gap to suppress quantum confinement. This effect is particularly relevant for small PbS QDs (with diameter of ≤4 nm) leading to absorption coefficients that largely differ from bulk values (up to ∼40% less). As a result of the broadband quantum confinement and of the high surface-to-volume ratio peculiar of nanocrystals, suitable surface chemical modification of PbS QDs is exploited to achieve a marked, size-dependent enhancement of the absorption coefficients compared to bulk values (up to ∼250%). We provide empirical relations to determine the absorption coefficients at 400 nm of as-synthesized and ligand-exchanged PbS QDs, accounting for the broadband quantum confinement and suggesting a heuristic approach to qualitatively predict the ligand effects on the optical absorption properties of PbS QDs. Our findings go beyond formalisms derived from Maxwell Garnett effective medium theory to describe QD optical properties and permit to spectrophotometrically calculate the concentration of PbS QD solutions avoiding underestimation due to deviations from the bulk. In perspective, we envisage the use of extended π-conjugated ligands bearing electronically active substituents to enhance light-harvesting in QD solids and suggest the inadequacy of the representation of ligands at the QD surface as mere electric dipoles.

摘要

如今,人们普遍认为胶体 PbS 量子点(QD)在 400nm 以上的波长范围内具有块状的光吸收特性。这种假设允许使用体光学常数来描述 PbS QD 的光吸收,并从简单的分光光度测量来确定胶体溶液中 QD 的浓度。在这里,我们证明 PbS QD 在整个近紫外可见近红外光谱范围内经历量子限制,因此即使在已经提出的足以抑制量子限制的 350nm 到 400nm 之间也是如此。对于小 PbS QD(直径≤4nm),这种效应尤其相关,导致吸收系数与体值有很大差异(最多相差约 40%)。由于宽带量子限制和纳米晶体特有的高表面积与体积比,对 PbS QD 进行适当的表面化学修饰,可实现与体值相比显著的、尺寸依赖性的吸收系数增强(最高可达约 250%)。我们提供了经验关系,可确定合成和配体交换的 PbS QD 在 400nm 处的吸收系数,考虑到宽带量子限制,并提出了一种启发式方法,定性预测配体对 PbS QD 光学吸收特性的影响。我们的发现超越了从麦克斯韦- garnett 有效介质理论推导出的形式化方法来描述 QD 光学性质,并允许通过分光光度法计算 PbS QD 溶液的浓度,避免由于偏离体值而导致的低估。从长远来看,我们设想使用具有电子活性取代基的扩展π共轭配体来增强 QD 固体中的光捕获,并表明配体在 QD 表面的表示不只是电偶极子是不适当的。

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