4.6 Article

Carbon Nanotubes for Quantum Dot Photovoltaics with Enhanced Light Management and Charge Transport

期刊

ACS PHOTONICS
卷 5, 期 12, 页码 4854-4863

出版社

AMER CHEMICAL SOC
DOI: 10.1021/acsphotonics.8b00982

关键词

colloidal quantum dots; photovoltaics; single-walled carbon nanotube; hole transport layer; charge carrier transfer; optical spacer effect

资金

  1. Japan Student Services Organization [L14326150008]
  2. Royal Society Newton Advanced Fellowship [NA 150152]
  3. FAPESP [2013/16911-2]
  4. International Collaborative Energy Technology R&D Program of the Korean Institute of Energy Technology Evaluation and Planning (KETEP)
  5. Ministry of Trade, Industry & Energy, Republic of Korea [20148520011250]
  6. EC FP 7 MSCA-Career Integration Grant [630864]
  7. EPSRC [EP/M015173/1]
  8. EPSRC CDT Plastic Electronics [EP/L01551X/1]
  9. University College, Oxford
  10. EPSRC [EP/M015173/1] Funding Source: UKRI

向作者/读者索取更多资源

Colloidal quantum dot (CQD)-based photo-voltaics are an emerging low-cost solar cell technology with power conversion efficiencies exceeding 10%, i.e., high enough to be interesting for commercialization. Well-controlled and understood charge carrier transport through the device stack is required to make the next step in efficiency improvements. In this paper, polymer-wrapped single-walled carbon nanotube (SWNT) films embedded in an insulating poly(methyl methacrylate) (PMMA) matrix and capped by a thermally evaporated Au electrode are investigated as a composite hole transport layer and optical spacer. Employing transient absorption spectroscopy we show that the SWNTs enhance the charge transfer rate from CQD to CQD, ZnO, or SWNT. In order to pinpoint the underlying mechanism for the improvement, we investigate the energetics of the junction by measuring the relative alignment of the band edges, using Kelvin probe and cyclic voltammetry. Measuring the external quantum efficiency and absorption we find that the improvement is not mainly from electronic improvements but from enhanced absorption of the CQD absorber. We demonstrate experimentally and theoretically, by employing a transfer-matrix model, that the transparent PMMA matrix acts as an optical spacer, which leads to an enhanced absorption in the absorber layer. With these electronic and optical enhancements, the efficiency of the PbS CQD solar cells improved from 4.0% to 6.0%.

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