Quantum Dot and Electron Acceptor Nano-Heterojunction for Photo-Induced Capacitive Charge-Transfer

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GOLD

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Abstract

Capacitive charge transfer at the electrode/electrolyte interface is a biocompatible mechanism for the stimulation of neurons. Although quantum dots showed their potential for photostimulation device architectures, dominant photoelectrochemical charge transfer combined with heavy-metal content in such architectures hinders their safe use. In this study, we demonstrate heavy-metal-free quantum dot-based nano-heterojunction devices that generate capacitive photoresponse. For that, we formed a novel form of nano-heterojunctions using type-II InP/ZnO/ZnS core/shell/shell quantum dot as the donor and a fullerene derivative of PCBM as the electron acceptor. The reduced electron-hole wavefunction overlap of 0.52 due to type-II band alignment of the quantum dot and the passivation of the trap states indicated by the high photoluminescence quantum yield of 70% led to the domination of photoinduced capacitive charge transfer at an optimum donor-acceptor ratio. This study paves the way toward safe and efficient nanoengineered quantum dot-based next-generation photostimulation devices.

Description

Melikov, Rustamzhon/0000-0003-2214-7604; Ow-Yang, Cleva W./0000-0002-2909-0957; Sahin, Mehmet/0000-0002-9419-1711; Onal, Asim/0000-0003-3682-6042;

Keywords

Materials for devices, Quantum dots, Science, Q, R, QD Chemistry, Article, QC Physics, Materials for devices; Quantum dots, Medicine, Science and technology

Fields of Science

02 engineering and technology, 0210 nano-technology

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23

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11

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1

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CrossRef : 10

Scopus : 25

PubMed : 5

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Mendeley Readers : 25

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