Hydrogen-Bonding-Driven Design of Organic–Inorganic Hybrid Ferroelastics with Reversible Photoisomerization

IF 4.3 2区 化学 Q1 CHEMISTRY, INORGANIC & NUCLEAR Inorganic Chemistry Pub Date : 2025-01-23 DOI:10.1021/acs.inorgchem.5c00005
Luis Verissimo, Zi-Luo Fang, Wei-Jian Xu, José M. G. Martinho, Wei Yuan, Wei-Xiong Zhang, Andrei Kholkin, João Rocha
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Abstract

The development of photoresponsive ferroelastics, which couple light-induced macroscopic mechanical and microscopic domain properties, represents a frontier in materials science with profound implications for advanced functional applications. In this study, we report the rational design and synthesis of two new organic–inorganic hybrid ferroelastic crystals, (MA)(Me4N)[Fe(CN)5(NO)] (MA = methylammonium) (1) and (MA)(Me3NOH)[Fe(CN)5(NO)] (2), using a dual-organic molecular design strategy that exploits hydrogen-bonding interactions for tailoring ferroelastic properties. Specifically, 1 exhibits a two-step phase transition at 138 and 242 K, while the introduction of a hydroxyl group in 2 stabilizes its ferroelastic phase to a significantly higher temperature, achieving a phase transition at 328 K, 86 K above that of 1. This enhancement is attributed to hydrogen bonding between the hydroxyl group of Me3NOH+ and the nitroprusside anion, which suppresses lattice dynamics and reinforces structural stability. Remarkably, 2 demonstrates a large spontaneous strain of 0.153, vastly exceeding the 0.021 of 1, and undergoes an 11% size change along the b-axis in response to thermal stimuli. Both compounds exhibit reversible, photoinduced nitrosyl-linkage isomerization, as confirmed by IR spectroscopy, transitioning between the ground state (N-bound nitrosyl) and the metastable state (O-bound nitrosyl). This integration of photoresponsive functionality with ferroelastic properties establishes a versatile platform for energy-efficient actuation, adaptive devices, and multifunctional sensing applications. These findings offer an innovative pathway for designing next-generation hybrid materials with enhanced tunable properties.

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可逆光异构化有机-无机杂化铁弹性材料的氢键驱动设计
光响应铁弹性材料的发展是材料科学的一个前沿领域,对先进的功能应用具有深远的影响。在这项研究中,我们报道了两种新的有机-无机杂化铁弹性晶体(MA)(Me4N)[Fe(CN)5(NO)] (MA =甲基铵)(1)和(MA)(Me3NOH)[Fe(CN)5(NO)](2)的合理设计和合成,采用双有机分子设计策略,利用氢键相互作用来调整铁弹性性能。具体来说,1在138和242 K时表现出两步相变,而在2中引入羟基使其铁弹性相稳定到明显更高的温度,在328 K时实现了相变,比1高86 K。这种增强是由于Me3NOH+的羟基与硝普盐阴离子之间的氢键作用,抑制了晶格动力学,增强了结构稳定性。值得注意的是,2表现出0.153的大自发应变,大大超过1的0.021,并且在热刺激下沿b轴发生11%的尺寸变化。红外光谱证实,这两种化合物都表现出可逆的光诱导亚硝基键异构化,在基态(n键亚硝基)和亚稳态(o键亚硝基)之间过渡。这种光响应功能与铁弹性特性的集成为节能驱动、自适应设备和多功能传感应用建立了一个通用平台。这些发现为设计具有增强可调性能的下一代混合材料提供了创新途径。
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来源期刊
Inorganic Chemistry
Inorganic Chemistry 化学-无机化学与核化学
CiteScore
7.60
自引率
13.00%
发文量
1960
审稿时长
1.9 months
期刊介绍: Inorganic Chemistry publishes fundamental studies in all phases of inorganic chemistry. Coverage includes experimental and theoretical reports on quantitative studies of structure and thermodynamics, kinetics, mechanisms of inorganic reactions, bioinorganic chemistry, and relevant aspects of organometallic chemistry, solid-state phenomena, and chemical bonding theory. Emphasis is placed on the synthesis, structure, thermodynamics, reactivity, spectroscopy, and bonding properties of significant new and known compounds.
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