Wang Qian, Jin Jianbo, Wang Zhongxuan, Ren Shenqiang, Ye Qingyu, Dou Yixuan, Liu Sunhao, Morris Amanda, Slebodnick Carla, Quan Lina
Department of Chemistry, Virginia Tech, Blacksburg, Virginia 24061, United States.
Department of Chemistry, University of California, Berkeley, California 94720, United States.
J Am Chem Soc. 2024 Apr 3;146(13):8971-8980. doi: 10.1021/jacs.3c13079. Epub 2024 Feb 23.
Nonlinear optical (NLO) switching materials, which exhibit reversible intensity modulation in response to thermal stimuli, have found extensive applications across diverse fields including sensing, photoelectronics, and photonic applications. While significant progress has been made in solid-state NLO switching materials, these materials typically showcase their highest NLO performance near room temperature. However, this performance drastically deteriorates upon heating, primarily due to the phase transition undergone by the materials from noncentrosymmetric to centrosymmetric phase. Here, we introduce a new class of NLO switching materials, solid-state supramolecular compounds 18-Crown-6 ether@CuCl·4HO (), exhibiting reversible and stable NLO switching when subjected to near-infrared (NIR) photoexcitation and/or thermal stimuli. The reversible crystal structure in response to external stimuli is attributed to the presence of a weakly coordinated bridging water molecule facilitated by hydrogen bonding/chelation interactions between the metal halide and crown-ether supramolecules. We observed an exceptionally high second-harmonic generation (SHG) signal under continuous photoexcitation, even at temperatures exceeding 110 °C. In addition, the bridging water molecules within the complex can be released and recaptured in a fully reversible manner, all without requiring excessive energy input. This feature allows for precise control of SHG signal activation and deactivation through structural transformations, resulting in a high-contrast off/on ratio, reaching values in the million-fold range.
非线性光学(NLO)开关材料能够响应热刺激表现出可逆的强度调制,已在包括传感、光电子学和光子学应用在内的各种领域得到广泛应用。虽然固态NLO开关材料已取得重大进展,但这些材料通常在室温附近展现出最高的NLO性能。然而,加热时这种性能会急剧下降,主要是由于材料从非中心对称相转变为中心对称相。在此,我们引入了一类新型的NLO开关材料,即固态超分子化合物18-冠-6醚@CuCl·4H₂O(),在受到近红外(NIR)光激发和/或热刺激时表现出可逆且稳定的NLO开关特性。响应外部刺激的可逆晶体结构归因于金属卤化物与冠醚超分子之间通过氢键/螯合相互作用促进形成的弱配位桥连水分子的存在。即使在超过110°C的温度下,我们在连续光激发下也观察到了异常高的二次谐波产生(SHG)信号。此外,配合物中的桥连水分子可以以完全可逆的方式释放和重新捕获,且无需过多的能量输入。这一特性允许通过结构转变精确控制SHG信号的激活和失活,从而实现高达百万倍范围的高对比度开/关比。