Ionic organic terahertz crystals: a perspective on design and solid-state phonon absorption

IF 5.7 2区 材料科学 Q2 MATERIALS SCIENCE, MULTIDISCIPLINARY
O-Pil Kwon and Mojca Jazbinsek
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Abstract

Ionic organic nonlinear optical crystals have been established as efficient terahertz (THz) wave generators with a high generated THz power and a very wide bandwidth and can also be used as ultra-broad THz detectors. In this perspective, we discuss various design strategies to obtain high-performance ionic organic THz crystals. The introduction of aromatic coulombic interaction groups and acentric head-to-tail cation–anion assembly groups, as well as the control of the van der Waals volume of aromatic ions, are common to many top-level ionic organic THz crystals. Solid-state molecular and phonon vibrations of these crystals strongly influence the characteristics of THz generation and detection, in addition to their optical and nonlinear optical properties. The THz vibrational modes depend on the chemical structure, intermolecular interaction ability, crystal structure, void volume, and crystal density of organic THz crystals. To give a perspective on the future design of optimized ionic organic THz crystals and the influence of their phonon modes on ultra-broadband THz applications, we discuss both the structural factors that influence these modes and their specific influence on THz optical properties.

Abstract Image

离子有机太赫兹晶体:设计与固态声子吸收透视
离子有机非线性光学晶体已被确立为高效的太赫兹(THz)波发生器,具有很高的太赫兹产生功率和很宽的带宽,还可用作超宽太赫兹探测器。从这个角度出发,我们讨论了获得高性能离子有机太赫兹晶体的各种设计策略。引入芳香族库仑相互作用基团和头尾同心阳离子-阴离子组装基团,以及控制芳香族离子的范德华体积,是许多顶级离子有机太赫兹晶体的共同之处。除了光学和非线性光学特性之外,这些晶体的固态分子振动和声子振动也对太赫兹产生和探测特性产生了重大影响。太赫兹振动模式取决于有机太赫兹晶体的化学结构、分子间相互作用能力、晶体结构、空隙体积和晶体密度。为了展望未来优化离子有机太赫兹晶体的设计及其声子模式对超宽带太赫兹应用的影响,我们讨论了影响这些模式的结构因素及其对太赫兹光学特性的具体影响。
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来源期刊
Journal of Materials Chemistry C
Journal of Materials Chemistry C MATERIALS SCIENCE, MULTIDISCIPLINARY-PHYSICS, APPLIED
CiteScore
10.80
自引率
6.20%
发文量
1468
期刊介绍: The Journal of Materials Chemistry is divided into three distinct sections, A, B, and C, each catering to specific applications of the materials under study: Journal of Materials Chemistry A focuses primarily on materials intended for applications in energy and sustainability. Journal of Materials Chemistry B specializes in materials designed for applications in biology and medicine. Journal of Materials Chemistry C is dedicated to materials suitable for applications in optical, magnetic, and electronic devices. Example topic areas within the scope of Journal of Materials Chemistry C are listed below. This list is neither exhaustive nor exclusive. Bioelectronics Conductors Detectors Dielectrics Displays Ferroelectrics Lasers LEDs Lighting Liquid crystals Memory Metamaterials Multiferroics Photonics Photovoltaics Semiconductors Sensors Single molecule conductors Spintronics Superconductors Thermoelectrics Topological insulators Transistors
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