{"title":"平衡杂环··焦二酸酐相互作用以实现电荷转移共晶中的可调谐发射","authors":"Wanglong Hong, Yuxing Deng, Shengli Zhu, Zhenduo Cui, Zhaoyang Li, Shuilin Wu, Wence Xu, Zhonghui Gao, Te Ba, Yanqin Liang* and Hui Jiang*, ","doi":"10.1021/acs.cgd.5c0003210.1021/acs.cgd.5c00032","DOIUrl":null,"url":null,"abstract":"<p >Cocrystal engineering focuses on adjustable noncovalent interactions (NCIs) and packing motifs through different functional molecular blocks to modulate physicochemical properties. NCIs are vital driving forces in the construction of organic cocrystal materials, such as π–π interactions, arene–perfluoroarene interactions, hydrogen bonds, and halogen bonds. Herein, pyromellitic dianhydride (PMDA) serves as the electron acceptor, and three heterocycle–acene-fused electron-rich donors, including 5H-benzo[4,5]thieno[3,2-<i>c</i>]carbazole (BTCZ), 5H-benzofuro[3,2-<i>c</i>]carbazole (BFCZ), and 5,12-dihydroindolo[3,2-<i>a</i>]carbazole (ICZ), are selected to react with PMDA to fabricate cocrystals. Single crystals of BTCZ-PMDA, BFCZ-PMDA, and ICZ-PMDA were grown via slow cooling and solvent evaporation, and their crystal structures, quantified NCIs, and photoluminescent properties were investigated. The results indicate that two types of π–π interactions along the π–π stacking direction show imbalanced interaction energies for BTCZ-PMDA and BFCZ-PMDA, while two π–π interaction energies are well balanced within ICZ-PMDA. Moreover, the red shift of the photoluminescent peak from 1.83 eV (BTCZ-PMDA) to 1.53 eV (ICZ-PMDA) can be ascribed to the balanced heterocycles···PMDA interactions and the overall enhancement of π–π and hydrogen bond interactions (N–H···O and C–H···O). Therefore, balancing the solid-state NCIs can offer a promising strategy to modulate fluorescence within charge-transfer cocrystals.</p>","PeriodicalId":34,"journal":{"name":"Crystal Growth & Design","volume":"25 5","pages":"1653–1666 1653–1666"},"PeriodicalIF":3.4000,"publicationDate":"2025-02-24","publicationTypes":"Journal Article","fieldsOfStudy":null,"isOpenAccess":false,"openAccessPdf":"","citationCount":"0","resultStr":"{\"title\":\"Balancing the Heterocycles···Pyromellitic Dianhydride Interactions to Achieve Tunable Emission in Charge-Transfer Cocrystals\",\"authors\":\"Wanglong Hong, Yuxing Deng, Shengli Zhu, Zhenduo Cui, Zhaoyang Li, Shuilin Wu, Wence Xu, Zhonghui Gao, Te Ba, Yanqin Liang* and Hui Jiang*, \",\"doi\":\"10.1021/acs.cgd.5c0003210.1021/acs.cgd.5c00032\",\"DOIUrl\":null,\"url\":null,\"abstract\":\"<p >Cocrystal engineering focuses on adjustable noncovalent interactions (NCIs) and packing motifs through different functional molecular blocks to modulate physicochemical properties. NCIs are vital driving forces in the construction of organic cocrystal materials, such as π–π interactions, arene–perfluoroarene interactions, hydrogen bonds, and halogen bonds. Herein, pyromellitic dianhydride (PMDA) serves as the electron acceptor, and three heterocycle–acene-fused electron-rich donors, including 5H-benzo[4,5]thieno[3,2-<i>c</i>]carbazole (BTCZ), 5H-benzofuro[3,2-<i>c</i>]carbazole (BFCZ), and 5,12-dihydroindolo[3,2-<i>a</i>]carbazole (ICZ), are selected to react with PMDA to fabricate cocrystals. Single crystals of BTCZ-PMDA, BFCZ-PMDA, and ICZ-PMDA were grown via slow cooling and solvent evaporation, and their crystal structures, quantified NCIs, and photoluminescent properties were investigated. The results indicate that two types of π–π interactions along the π–π stacking direction show imbalanced interaction energies for BTCZ-PMDA and BFCZ-PMDA, while two π–π interaction energies are well balanced within ICZ-PMDA. Moreover, the red shift of the photoluminescent peak from 1.83 eV (BTCZ-PMDA) to 1.53 eV (ICZ-PMDA) can be ascribed to the balanced heterocycles···PMDA interactions and the overall enhancement of π–π and hydrogen bond interactions (N–H···O and C–H···O). 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引用次数: 0
摘要
共晶工程的重点是可调节的非共价相互作用(NCIs)和包装基序通过不同的功能分子块来调节物理化学性质。nci是构建有机共晶材料的重要驱动力,如π -π相互作用、芳烃-全氟芳烃相互作用、氢键和卤素键。本文以邻苯二甲酸二酐(PMDA)为电子受体,选择3个杂环-烯融合的富电子给体,包括5h -苯并[4,5]噻吩[3,2-c]咔唑(BTCZ)、5h -苯并呋喃[3,2-c]咔唑(BFCZ)和5,12-二氢吲哚[3,2-a]咔唑(ICZ)与PMDA反应制备共晶。通过缓慢冷却和溶剂蒸发法制备BTCZ-PMDA、BFCZ-PMDA和ICZ-PMDA单晶,研究了它们的晶体结构、定量NCIs和光致发光性能。结果表明:BTCZ-PMDA和BFCZ-PMDA两种类型的π -π相互作用沿π -π堆叠方向的相互作用能量不平衡,而ICZ-PMDA内部两种类型的π -π相互作用能量平衡良好。此外,光致发光峰的红移从1.83 eV (BTCZ-PMDA)到1.53 eV (ICZ-PMDA)可以归因于平衡的杂环··PMDA相互作用以及π -π和氢键相互作用(N-H··O和C-H··O)的整体增强。因此,平衡固态NCIs可以提供一种有前途的策略来调制电荷转移共晶体内的荧光。
Balancing the Heterocycles···Pyromellitic Dianhydride Interactions to Achieve Tunable Emission in Charge-Transfer Cocrystals
Cocrystal engineering focuses on adjustable noncovalent interactions (NCIs) and packing motifs through different functional molecular blocks to modulate physicochemical properties. NCIs are vital driving forces in the construction of organic cocrystal materials, such as π–π interactions, arene–perfluoroarene interactions, hydrogen bonds, and halogen bonds. Herein, pyromellitic dianhydride (PMDA) serves as the electron acceptor, and three heterocycle–acene-fused electron-rich donors, including 5H-benzo[4,5]thieno[3,2-c]carbazole (BTCZ), 5H-benzofuro[3,2-c]carbazole (BFCZ), and 5,12-dihydroindolo[3,2-a]carbazole (ICZ), are selected to react with PMDA to fabricate cocrystals. Single crystals of BTCZ-PMDA, BFCZ-PMDA, and ICZ-PMDA were grown via slow cooling and solvent evaporation, and their crystal structures, quantified NCIs, and photoluminescent properties were investigated. The results indicate that two types of π–π interactions along the π–π stacking direction show imbalanced interaction energies for BTCZ-PMDA and BFCZ-PMDA, while two π–π interaction energies are well balanced within ICZ-PMDA. Moreover, the red shift of the photoluminescent peak from 1.83 eV (BTCZ-PMDA) to 1.53 eV (ICZ-PMDA) can be ascribed to the balanced heterocycles···PMDA interactions and the overall enhancement of π–π and hydrogen bond interactions (N–H···O and C–H···O). Therefore, balancing the solid-state NCIs can offer a promising strategy to modulate fluorescence within charge-transfer cocrystals.
期刊介绍:
The aim of Crystal Growth & Design is to stimulate crossfertilization of knowledge among scientists and engineers working in the fields of crystal growth, crystal engineering, and the industrial application of crystalline materials.
Crystal Growth & Design publishes theoretical and experimental studies of the physical, chemical, and biological phenomena and processes related to the design, growth, and application of crystalline materials. Synergistic approaches originating from different disciplines and technologies and integrating the fields of crystal growth, crystal engineering, intermolecular interactions, and industrial application are encouraged.