论文标题
宽带临界动力学的铅基钙壶中的临界动力学
Broadband critical dynamics in disordered lead-based perovskites
论文作者
论文摘要
基于立方钙钛矿晶胞的材料继续为技术上重要的材料提供基础,最近有两个著名的示例是基于铅的放松器压电和铅基有机无机卤化物光伏。这些材料具有相当大的混乱,这是由于有机企业中的放松剂和分子振动的现场替代而产生的,但是我们对这些系统的大部分理解源自罗杰·A·考利教授的最初经典作品,他在粉笔河实验室中应用理论和中子散射方法的经典作品,在srtio $ $ $ _} $ _} $ _ {3} $ _ {3} $ _ {3} $ _ {3}中。由于简单的横截面和通过当前的中子仪器可以实现的广泛能量分辨率,中子散射在表征钙晶的晶格振动方面继续起着至关重要的作用。 We discuss the dynamics that drive the phase transitions in the relaxors and organic-inorganic lead-halides in terms of neutron scattering and compare them to those in phase transitions associated with a ``central peak" and also a soft mode. We review some of the past experimental work on these materials and present new data from high-resolution time-of-flight backscattering spectroscopy taken on organic-inorganic perovskites. We will show that the structural transitions在无序的铅基钙壶中,钙钛矿是由频率的激发带驱动的。
Materials based on the cubic perovskite unit cell continue to provide the basis for technologically important materials with two notable recent examples being lead-based relaxor piezoelectrics and lead-based organic-inorganic halide photovoltaics. These materials carry considerable disorder, arising from site substitution in relaxors and molecular vibrations in the organic-inorganics, yet much of our understanding of these systems derives from the initial classic work of Prof. Roger A. Cowley, who applied both theory and neutron scattering methods while at Chalk River Laboratories to the study of lattice vibrations in SrTiO$_{3}$. Neutron scattering continues to play a vital role in characterizing lattice vibrations in perovskites owing to the simple cross section and the wide range of energy resolutions achievable with current neutron instrumentation. We discuss the dynamics that drive the phase transitions in the relaxors and organic-inorganic lead-halides in terms of neutron scattering and compare them to those in phase transitions associated with a ``central peak" and also a soft mode. We review some of the past experimental work on these materials and present new data from high-resolution time-of-flight backscattering spectroscopy taken on organic-inorganic perovskites. We will show that the structural transitions in disordered lead-based perovskites are driven by a broad frequency band of excitations.