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1有机-无机杂化卤化物钙钛矿材料稳定性及其在光电探测器方面的研究进展(特邀)显示文摘有机-无机杂化钙钛矿材料(CH3NH3PbX3)因其具有载流子迁移率高、直接带隙结构、光电转换效率高等优异的光电性能,在太阳能电池、光电探测器、发光二极管及激光器等光电子领域具有重要应用前景。然而,有机-无机杂化钙钛矿材料的稳定性问题是现阶段限制其进一步应用的瓶颈。本文首先系统论述子外界环境因素(水氧、温度、光照等)对有机-无机杂化钙钛矿材料稳定性的影响因素与物理机制。其次,总结了目前改善及提高钙钛矿材料稳定性的主要方法和技术途径,如改进合成方法、离子掺杂、器件封装等手段。同时分析了其对基于有机-无机杂化钙钛矿材料光电探测器性能的影响。最后提出了该领域在实际应用中面临的挑战和发展策略。姚丽娟 方铉 房丹 高晨皓 刘胜达 李如雪 王登魁 魏志鹏 王晓华 2021光子学报2021,50,1:4
2All-Perovskite Tandem Solar Cells:A Roadmap to Uniting High Efficiency with High Stability显示文摘CONSPECTUS:Organic−inorganic halide perovskite photovoltaics(PVs)only a decade-old fieldhave reached impressive power conversion efficiencies(PCEs)and passed industrial stability requirements(IEC 61215:2016 Damp Heat and Humidity Freeze tests),solidifying their status among candidates for next generation PVs.Among the various perovskite PV technologies,all-perovskite tandem solar cells(PTSCs)are frontrunners for commercialization.PTSCs unite a narrow-bandgap(NBG;Eg≈1.2 eV)perovskite back cell with a wide-bandgap(WBG;Eg≈1.7−1.9 eV)perovskite front cell.Despite their nascency,PTSCs have achieved certified PCEs of 24.8%and 24.2%for small-area(0.049 cm^2)and large-area devices(1.041 cm2),respectively.With further advances in materials development,PTSCs are capable of moving beyond the PCE limits of single-junction cells due to reduced thermalization losses and improved utilization of the solar spectrum.By contrast,the PCE of single-junction perovskite devices is already approaching its saturation level,which is already very close to the device’s Shockley−Queisser limit for a bandgap of around 1.55 eV.The tandem architecture,thus,provides the most viable path forward to further exploiting the potential of perovskite solar cells.However,PTSC technology faces a set of challenges distinct from those in perovskite single-junction devices because(i)NBG perovskitestypically achieved by Pb−Sn alloyingare prone to oxidation(Sn^2+to Sn^4+),which results in a high density of Sn vacancies that degrade the optoelectronic performance of NBG perovskite films,(ii)practically complete photon absorption and charge extraction require thick,NBG perovskite films having long carrier diffusion lengths,and(iii)WBG perovskites with high Br/(I+Br)ratio experience large voltage losses and inferior light stability due to surface trap states and phase segregation.In this Account,we discuss how to manage these considerations and maximize the power output in PTSCs via light management.We then review strategies,including composition-and additive-engineering,defect passivation,and matching charge transport layers,for enhancing the carrier diffusion length of NBG perovskite cells and mitigating voltage losses in WBG perovskite cells.We also summarize the advances made in the fabrication of PTSCs on the device level,especially the evolution of tunnel recombination junctions and tandem device architectures.Finally,we highlight further research efforts needed to overcome roadblocks to commercialization(e.g.,improving the environmental,thermal,and operating stability of these devices)and offer our perspective on the future development of this rapidly advancing field.Xiaopeng Zheng Abdullah Y.Alsalloum Yi Hou Edward H.Sargent Osman M.Bakr 2020Accounts of Materials Research2020,1,1:2
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