4.7 Article

Influence of SiO2 shell thickness on power conversion efficiency in plasmonic polymer solar cells with Au nanorod@SiO2 core-shell structures

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SCIENTIFIC REPORTS
卷 6, 期 -, 页码 -

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NATURE PORTFOLIO
DOI: 10.1038/srep25036

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资金

  1. National Foundation for Science and Technology Development (973 project) [2015CB932202]
  2. National Natural Science Foundation of China [61274065, 61505086, 51173081, 61136003, BZ2010043]
  3. NSF of the Higher Education Institutions of Jiangsu Province [SJ209003, 11KJD510003]
  4. Natural Science Foundation of Jiangsu Province [BM2012010, BK20141424]
  5. Priority Academic Program Development of Jiangsu Higher Education Institutions [YX030001]
  6. Jiangsu National Synergetic Innovation Center for Advanced Materials
  7. Synergetic Innovation Center for Organic Electronics and Information Displays
  8. Ministry of Education Humanities and Social Science Research Projects [13YJCZH091]
  9. Ordinary University Graduate Student Practical Innovation Project of Jiangsu Province [SJLX15_0390]
  10. Open Foundation from Jilin University [IOSKL2015KF32]

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Locating core-shell metal nanoparticles into a photoactive layer or at the interface of photoactive layer/hole extraction layer is beneficial for fully employing surface plasmon energy, thus enhancing power conversion efficiency (PCE) in plasmonic organic photovoltaic devices (OPVs). Herein, we first investigated the influence of silica shell thickness in Au nanorods (NRs)@SiO2 core-shell structures on OPV performances by inserting them into poly(3,4-ethylenedioxythiophene):poly(4-styrenesulfonate) and thieno[3,4-b]thiophene/benzodithiophene (PTB7) interface, and amazedly found that a 2-3 nm silica shell onto Au NRs induces a highest short-circuit current density of 21.2 mA cm(-2) and PCE of 9.55%. This is primarily due to an extremely strong local field and a much slower attenuation of localized surface plasmon resonance around ultrathin silica-coated Au NRs, with which the field intensity remains a high value in the active layer, thus sufficiently improves the absorption of PTB7. Our work provides a clear design concept on precise control of the shell of metal nanoparticles to realize high performances in plasmonic OPVs.

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