Jin Handong, Mukherjee Amitrajit, Chouhan Lata, Steele Julian A, de Jong Flip, Gao Yujie, Roeffaers Maarten B J, Hofkens Johan, Debroye Elke
Department of Chemistry, KU Leuven, Celestijnenlaan 200F, Leuven, Belgium.
cMACS, Department of Microbial and Molecular Systems, KU Leuven, 3001 Leuven, Belgium.
Nanoscale. 2023 Mar 16;15(11):5437-5447. doi: 10.1039/d2nr06427h.
Surface passivation by post-treatment with methylammonium chloride (MACl) is regarded as a promising strategy to suppress surface defects in organic-inorganic lead halide perovskites and elevate the efficiency of solar cells based on these materials. However, traditional MACl post-treatment methods often impede the performance of the final device, due to the creation of additional unwanted defects. Herein, we report a novel approach for chloride post-treatment by applying a mixed ethanol/toluene solvent and validate its beneficial effect on the structure, composition, and optical properties of methylammonium lead iodide nano/microcrystals and related photosensitive devices. An optimized (mild) Cl content improves the crystallinity, enhances photoluminescence (PL) intensity, provides longer PL lifetimes, and induces brighter and longer ON-states in single-particle emission trajectories. On top of a reduction in the population percentage of crystals showing gradual photodegradation, our Cl-treatment method even leads to photobrightening. Additionally, the extent of carrier communication throughout spatially distant nanodomains enhances after MACl-based post-modification. Our results demonstrate that surface-bound Cl significantly reduces the trap density induced by under-coordinated lead ions or iodide vacancies and reveal the importance of a careful consideration of the applied Cl content to avoid the generation of high-bandgap MAPbCl heterojunctions upon excessive Cl treatment. Importantly, significant trap passivation upon MACl treatment translates into a more stable and elevated photocurrent in the corresponding photodetector device. We anticipate these findings will be beneficial for designing durable, high-performance lead halide perovskite photonic devices.
用氯化铵(MACl)进行后处理实现表面钝化,被认为是一种很有前景的策略,可用于抑制有机-无机卤化铅钙钛矿中的表面缺陷,并提高基于这些材料的太阳能电池的效率。然而,传统的MACl后处理方法往往会阻碍最终器件的性能,因为会产生额外的有害缺陷。在此,我们报告了一种通过应用乙醇/甲苯混合溶剂进行氯化物后处理的新方法,并验证了其对甲基碘化铅纳米/微晶以及相关光敏器件的结构、组成和光学性质的有益影响。优化(适度)的Cl含量可提高结晶度、增强光致发光(PL)强度、提供更长的PL寿命,并在单粒子发射轨迹中诱导出更亮、持续时间更长的开启状态。除了降低显示出逐渐光降解的晶体的数量百分比外,我们的Cl处理方法甚至还会导致光致增亮。此外,基于MACl的后修饰后,整个空间上相距较远的纳米域之间的载流子通信程度增强。我们的结果表明,表面结合的Cl显著降低了由配位不足的铅离子或碘空位诱导的陷阱密度,并揭示了仔细考虑所施加的Cl含量以避免在过度Cl处理时产生高带隙MAPbCl异质结的重要性。重要的是,MACl处理后的显著陷阱钝化转化为相应光电探测器器件中更稳定且更高的光电流。我们预计这些发现将有助于设计耐用的高性能卤化铅钙钛矿光子器件。