4.6 Article

A flexible semitransparent photovoltaic supercapacitor based on water-processed MXene electrodes

期刊

JOURNAL OF MATERIALS CHEMISTRY A
卷 8, 期 11, 页码 5467-5475

出版社

ROYAL SOC CHEMISTRY
DOI: 10.1039/d0ta00687d

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资金

  1. Swedish Energy Agency [EM 42033-1]
  2. Swedish Government Strategic Research Area in Material Science on Functional Materials at Linkoping University (Faculty Grant SFO-Mat-LiU) [200900971]
  3. Swedish Research Council [2017-04123]
  4. SSF Research Infrastructure Fellow Program [RIF 14-0074]
  5. SSF Synergy Program [EM16-0004]
  6. Knut and Alice Wallenberg (KAW) Foundation [KAW 2015.0043]
  7. National Natural Science Foundation of China [61774077]
  8. Open Fund of the State Key Laboratory of Luminescent Materials and Devices [2018-skllmd-12]
  9. Fundamental Research Funds for the Central Universities
  10. Swedish Research Council [2017-04123] Funding Source: Swedish Research Council

向作者/读者索取更多资源

Solar energy, although it has the highest power density available in terms of renewable energy, has the drawback of being erratic. Integrating an energy harvesting and storage device into photovoltaic energy storage modules is a viable route for obtaining self-powered energy systems. Herein, an MXene-based all-solution processed semitransparent flexible photovoltaic supercapacitor (PSC) was fabricated by integrating a flexible organic photovoltaic (OPV) with Ti3C2Tx MXene as the electrode and transparent MXene supercapacitors with an organic ionogel as the electrolyte in the vertical direction, using Ti3C2Tx thin film as a common electrode. In the quest for a semitransparent flexible PSC, Ti3C2Tx MXene was first used as a transparent electrode for OPV with a high power conversion efficiency of 13.6%. The ionogel electrolyte-based transparent MXene supercapacitor shows a high volumetric capacitance of 502 F cm(-3) and excellent stability. Finally, a flexible PSC with a high average transmittance of over 33.5% was successfully constructed by all-solution processing and a remarkable storage efficiency of 88% was achieved. This strategy enables a simple route for fabricating MXene based high-performance all-solution-processed flexible PSCs, which is important for realizing flexible and printable electronics for future technologies.

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