Piezofluorochromism in Hierarchical Porous π‐stacked Supermolecular Spring Frameworks from Aromatic Chiral Cages

Author:

Cui Dongxu12ORCID,Bai Fuquan2,Zhang Long3,Li Wei2,Zhang Yuxiao1,Wang Kai3,Wu Min4,Sun Chunyi1ORCID,Zang Hongying1,Zou Bo3ORCID,Wang Xinlong15,Su Zhongmin2

Affiliation:

1. Key Laboratory of Polyoxometalate and Reticular Material Chemistry of Ministry of Education Department of Chemistry Northeast Normal University Changchun Jilin 130024 China

2. State Key Laboratory of Supramolecular Structure and Materials Institute of Theoretical Chemistry College of Chemistry Jilin University Changchun Jilin 130024 China

3. State Key Laboratory of Superhard Materials College of Physics Jilin University Changchun Jilin 130024 China

4. Shandong Key Laboratory of Optical Communication Science and Technology School of Physics Science and Information Technology Liaocheng University Liaocheng 252000 P. R. China

5. Key Laboratory of Advanced Materials of Tropical Island Resources Ministry of Education Hainan University Haikou Hainan 570228 China

Abstract

AbstractPiezochromic materials that exhibit pressure‐dependent luminescence variations are attracting interest with wide potential applications in mechanical sensors, anticounterfeiting and storage devices. Crystalline porous materials (CPMs) have been widely studied in piezochromism for highly tunable luminescence. Nevertheless, reversible and high‐contrast emission response with a wide pressure range is still challenging. Herein, the first example of hierarchical porous cage‐based πOF (CageπOF1) with spring structure was synthesized by using aromatic chiral cages as building blocks. Its elastic properties evaluated based on the bulk modulus (9.5 GPa) is softer than most reported CPMs and the collapse point (20.0 GPa) significantly exceeds ever reported CPMs. As smart materials, CageπOF1 displays linear pressure‐dependent emission and achieves a high‐contrast emission difference up to 154 nm. Pressure‐responsive limit is up to 16 GPa, outperforming the CPMs reported so far. Dedicated experiments and density functional theory (DFT) calculations illustrate that π–π interactions‐dominated controllable structural shrinkage and porous‐spring‐structure‐mediated elasticity is responsible for the outstanding piezofluorochromism.

Funder

National Natural Science Foundation of China

Department of Science and Technology of Jilin Province

Publisher

Wiley

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