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In situ interface engineering for probing the limit of quantum dot photovoltaic devices. | LitMetric

In situ interface engineering for probing the limit of quantum dot photovoltaic devices.

Nat Nanotechnol

SEU-FEI Nano-Pico Center, Key Laboratory of MEMS of Ministry of Education, Collaborative Innovation Center for Micro/Nano Fabrication, Device and System, Southeast University, Nanjing, China.

Published: October 2019

AI Article Synopsis

  • Quantum dot photovoltaic devices offer advantages like low-cost fabrication and tunable efficiency, but current performance is not optimal.
  • Researchers have developed a novel method to create and study a specific type of solar cell using a TiO-nanowire and CdSe-QD, allowing for precise measurements of power conversion efficiency (PCE) under varying interface conditions.
  • Their findings suggest that minimizing interface area and utilizing the optical properties of nanowires can enhance solar cell performance, contributing to better understanding of nanoscale solar technology.

Article Abstract

Quantum dot (QD) photovoltaic devices are attractive for their low-cost synthesis, tunable band gap and potentially high power conversion efficiency (PCE). However, the experimentally achieved efficiency to date remains far from ideal. Here, we report an in-situ fabrication and investigation of single TiO-nanowire/CdSe-QD heterojunction solar cell (QDHSC) using a custom-designed photoelectric transmission electron microscope (TEM) holder. A mobile counter electrode is used to precisely tune the interface area for in situ photoelectrical measurements, which reveals a strong interface area dependent PCE. Theoretical simulations show that the simplified single nanowire solar cell structure can minimize the interface area and associated charge scattering to enable an efficient charge collection. Additionally, the optical antenna effect of nanowire-based QDHSCs can further enhance the absorption and boost the PCE. This study establishes a robust 'nanolab' platform in a TEM for in situ photoelectrical studies and provides valuable insight into the interfacial effects in nanoscale solar cells.

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Source
http://dx.doi.org/10.1038/s41565-019-0526-7DOI Listing

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