Targeted Ligand-Exchange Chemistry on Cesium Lead Halide Perovskite Quantum Dots for High-Efficiency Photovoltaics

化学 光伏 量子点 铅(地质) 钙钛矿(结构) 配体(生物化学) 纳米技术 卤化物 无机化学 光伏系统 结晶学 材料科学 受体 生物化学 生态学 地貌学 地质学 生物
作者
Lance M. Wheeler,Erin M. Sanehira,Ashley R. Marshall,Philip Schulz,Mokshin Suri,Nicholas C. Anderson,Jeffrey A. Christians,Dennis Nordlund,Dimosthenis Sokaras,Thomas Kröll,Steven P. Harvey,Joseph J. Berry,Lih Y. Lin,Joseph M. Luther
出处
期刊:Journal of the American Chemical Society [American Chemical Society]
卷期号:140 (33): 10504-10513 被引量:344
标识
DOI:10.1021/jacs.8b04984
摘要

The ability to manipulate quantum dot (QD) surfaces is foundational to their technological deployment. Surface manipulation of metal halide perovskite (MHP) QDs has proven particularly challenging in comparison to that of more established inorganic materials due to dynamic surface species and low material formation energy; most conventional methods of chemical manipulation targeted at the MHP QD surface will result in transformation or dissolution of the MHP crystal. In previous work, we have demonstrated record-efficiency QD solar cells (QDSCs) based on ligand-exchange procedures that electronically couple MHP QDs yet maintain their nanocrystalline size, which stabilizes the corner-sharing structure of the constituent PbI64- octahedra with optoelectronic properties optimal for solar energy conversion. In this work, we employ a variety of spectroscopic techniques to develop a molecular-level understanding of the MHP QD surface chemistry in this system. We individually target both the anionic (oleate) and cationic (oleylammonium) ligands. We find that atmospheric moisture aids the process by hydrolysis of methyl acetate to generate acetic acid and methanol. Acetic acid then replaces native oleate ligands to yield QD surface-bound acetate and free oleic acid. The native oleylammonium ligands remain throughout this film deposition process and are exchanged during a final treatment step employing smaller cations-namely, formamidinium. This final treatment has a narrow processing window; initial treatment at this stage leads to a more strongly coupled QD regime followed by transformation into a bulk MHP film after longer treatment. These insights provide chemical understanding to the deposition of high-quality, electronically coupled MHP QD films that maintain both quantum confinement and their crystalline phase and attain high photovoltaic performance.
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