首页> 外文期刊>ACS Omega >Crystal Structures, Photoluminescence, and Magnetism of Two Novel Transition-Metal Complex Cocrystals with Three-Dimensional H-Bonding Organic Framework or Alternating Noncovalent Anionic and Cationic Layers
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Crystal Structures, Photoluminescence, and Magnetism of Two Novel Transition-Metal Complex Cocrystals with Three-Dimensional H-Bonding Organic Framework or Alternating Noncovalent Anionic and Cationic Layers

机译:两种新型三维金属键合有机骨架或交替交替的非共价阴离子和阳离子层的过渡金属络合物共晶体的晶体结构,光致发光和磁性

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Cocrystallization may alter material physicochemical properties; thus, the strategy of forming a cocrystal is generally used to improve the material performance for practical applications. In this study, two transition-metal complex cocrystals [Zn(bpy)3]H0.5BDC·H1.5BDC·0.5bpy·3H2O (1) and [Cu2(BDC)(bpy)4]BDC·bpy·2H2O (2) have been achieved using a hydrothermal reaction, where bpy and H2BDC represent 2,2′-bipyridine and benzene-1,3-dicarboxylic acid, respectively. Cocrystals were characterized by microanalysis, infrared spectroscopy, and UV–visible spectroscopy. Cocrystal 1 contains five components and crystallizes in a monoclinic space group P21. The H0.5BDC1.5–, H1.5BDC0.5–, and H2O molecules construct three-dimensional H-bonding organic framework; the [Zn(bpy)3]2+ coordination cations and uncoordinated bpy molecules reside in channels, where two coordinated bpy ligands in [Zn(bpy)3]2+ and one uncoordinated bpy adopt sandwich-type alignment via π···π stacking interactions. Cocrystal 2 with four components crystallizes in a triclinic space group P-1 to form alternating layers; the binuclear [Cu2(bpy)4(BDC)]2+ cations and uncoordinated bpy molecules build the cationic layers, and the BDC2– species with disordered lattice water molecules form the anionic layers. Cocrystal 1 shows intense photoluminescence at an ambient condition with a quantum yield of 14.96% and decay time of 0.48 ns, attributed to the π* → π electron transition within phenyl/pyridyl rings, and 2 exhibits magnetic behavior of an almost isolated spin system with rather weak antiferromagnetic coupling in the [Cu2(bpy)4(BDC)]2+ cation.
机译:共结晶可能会改变材料的物理化学性质。因此,形成共晶的策略通常用于改善实际应用中的材料性能。在这项研究中,两个过渡金属络合物共晶体[Zn(bpy)3] H0.5BDC·H1.5BDC·0.5bpy·3H2O(1)和[Cu2(BDC)(bpy)4] BDC·bpy·2H2O(2 )是使用水热反应实现的,其中bpy和H2BDC分别代表2,2'-联吡啶和苯-1,3-二羧酸。共晶体的特征在于显微分析,红外光谱和紫外可见光谱。共晶体1包含五个成分,并在单斜晶空间群P21 / n中结晶。 H0.5BDC1.5–,H1.5BDC0.5–和H2O分子构成三维H键有机骨架。 [Zn(bpy)3] 2+配位阳离子和未配位的bpy分子位于通道中,其中[Zn(bpy)3] 2+中的两个配位的bpy配体和一个未配位的bpy通过π···π进行夹心型排列堆叠互动。具有四个组分的共晶体2在三斜晶空间群P-1中结晶形成交替的层。双核[Cu2(bpy)4(BDC)] 2+阳离子和未配位的bpy分子构成阳离子层,而具有无序​​晶格水分子的BDC2-物种形成阴离子层。共晶体1在环境条件下显示出强烈的光致发光,其量子产率为14.96%,衰减时间为0.48 ns,这归因于苯基/吡啶环内的π*→π电子跃迁,而共晶2则显示了几乎孤立的自旋系统的磁行为[Cu2(bpy)4(BDC)] 2+阳离子中的反铁磁耦合相当弱。

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