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Constructing Stable and Potentially High-Performance Hybrid Organic-Inorganic Perovskites with Unstable Cations

机译:用不稳定阳离子构建稳定且潜在的高性能杂种有机无机钙锌矿

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摘要

A new family of functional hybrid organic-inorganic perovskites (HOIPs) is theoretically designed based on the following chemical insights: when a proton is adhered to molecules like water or ethanol, the newly formed larger-sized cations (e.g., H5O2+, C2H5OH2+, and CH3SH+) entail low electron affinities mimicking superalkalis; they are conjugated acids of weak bases that cannot survive in solution, while their chemistry behavior in the HOIP frameworks, however, may be markedly different due to greatly enhanced cohesive energies of the proton, which facilitate the formation of new HOIPs. First-principles computations show that the putative formation reactions for these newly designed HOIPs typically release much more energy compared with the prevailing HOIP MAPbI3, suggesting the likelihood of facile solution-based fabrications, while the suppression of reverse formation suggests that the humidity stability may be markedly enhanced. During their formations, halide acids are unlikely to react with ethanol or methanethiol without the presence of metal halides, a condition further favoring their stability. The proposed structure of (H5O2)PbI3 may also clarify the origin of the long-speculated existence of HPbI3. Importantly, density functional theory computations suggest that many of these HOIPs possess not only direct bandgaps with values within the optimal range for solar light absorbing but also more desirable optical absorption spectra than that of MAPbI3, where their ferroelectric polarizations also benefit photovoltaics. The stability and photovoltaic efficiency may be even further improved for the newly designed two-dimensional (2D) HOIPs and 2D/3D hybrid HOIP structures.
机译:基于以下化学洞察理论上设计了一种新的功能性杂种有机无机钙酯(船长):当质子粘附到水或乙醇等分子上时,新形成的较大阳离子(例如,H5O2 +,C 2 H 5 OH 2 +和CH3sh +)需要低电子亲和力模仿超级展位;它们是在溶液中不能存活的弱碱的共轭酸,但是由于质子的大大增强的粘性能量,它们在地质框架中的化学行为可能明显不同,这便于形成新的伐木。第一原理计算表明,与主要的Hoip Mapbi3相比,这些新设计的船膜的推定形成反应通常释放更多的能量,这表明了基于溶液的制造的可能性,而逆转形成的抑制表明湿度稳定性可能是显着增强。在形成期间,卤化物酸不太可能与乙醇或甲基硫醇反应而不存在金属卤化物的存在,该条件进一步优先于其稳定性。所提出的(H5O2)PBI3的结构还可以阐明HPBI3的长推测存在的来源。重要的是,密度泛函理论计算表明,许多这些港口中的许多不仅具有与太阳光吸收的最佳范围内的值的直接带隙,而且比MAPBI3的光学吸收光谱更高,其中它们的铁电偏振也有利于光伏。对于新设计的二维(2D)箍和2D / 3D混合地Hoip结构,稳定性和光伏效率也可以进一步提高。

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