Huitorel Brendan, Utrera-Melero Raquel, Massuyeau Florian, Mevelec Jean-Yves, Baptiste Benoit, Polian Alain, Gacoin Thierry, Martineau-Corcos Charlotte, Perruchas Sandrine
Laboratoire de Physique de la Matière Condensée (PMC), CNRS - Ecole Polytechnique, 91128 Palaiseau Cedex, France.
Dalton Trans. 2019 Jun 14;48(22):7899-7909. doi: 10.1039/c9dt01161g. Epub 2019 May 14.
The development of luminescent mechanochromic materials depends mainly on the possibility to rationally design them with the desired properties. Molecular copper iodide clusters constitute an unprecedented family of compounds exhibiting great changes of their luminescence properties upon mechanical stress. From previous studies, the mechanochromic properties of cubane [CuIL] (L = organic ligand) clusters have been attributed to modifications of cuprophilic interactions induced by mechanical solicitation. In this study, we ascertain our hypothesis by choosing to study the luminescence mechanochromism of a [CuI(PPh)] cluster which presents two crystalline polymorphs exhibiting strikingly different Cu-Cu bond lengths. As forecasted, only one of these two polymorphs exhibits mechanochromic properties. Structural and optical characterization methods are reported along with structural characterization under controlled pressure allowing a precise analysis of the structural changes occurring under mechanical stress. In addition to confirming our mechanism based on enhancement of cuprophilic interactions under pressure, this study demonstrates the possibility of prediction of mechanochromic properties in the family of copper iodide compounds that constitutes a step further toward the rational design of stimuli-responsive materials.
发光机械变色材料的发展主要取决于合理设计具有所需特性材料的可能性。分子碘化铜簇构成了一类前所未有的化合物家族,它们在机械应力作用下发光特性会发生巨大变化。从先前的研究来看,立方烷型[CuIL](L = 有机配体)簇的机械变色特性归因于机械作用引起的亲铜相互作用的改变。在本研究中,我们通过选择研究[CuI(PPh)]簇的发光机械变色现象来验证我们的假设,该簇呈现出两种晶体多晶型,其铜 - 铜键长显著不同。正如所预测的那样,这两种多晶型中只有一种表现出机械变色特性。本文报道了结构和光学表征方法,以及在可控压力下的结构表征,从而能够精确分析机械应力作用下发生的结构变化。除了证实我们基于压力下亲铜相互作用增强的机制外,本研究还证明了在碘化铜化合物家族中预测机械变色特性的可能性,这朝着刺激响应材料的合理设计又迈进了一步。