Vibration‐Dependent Dual‐Phosphorescent Cu4 Nanocluster with Remarkable Piezochromic Behavior

Author:

Zhang Xiao‐Jing1,Sun Meng‐En12,Sun Fang3,Jin Yan1,Dong Xi‐Yan14,Li Si1,Li Hai‐Yang1,Chen Gaosong1,Fu Yongping5,Wang Yonggang6,Tang Qing3,Wu Yuchen7,Jiang Lei7,Zang Shuang‐Quan1ORCID

Affiliation:

1. Henan Key Laboratory of Crystalline Molecular Functional Materials Henan International Joint Laboratory of Tumor Theranostical Cluster Materials Green Catalysis Center, and College of Chemistry Zhengzhou University 450001 Zhengzhou China

2. College of Material Engineering Henan International Joint Laboratory of Rare Earth Composite Materials Henan University of Engineering 451191 Zhengzhou China

3. School of Chemistry and Chemical Engineering Chongqing Key Laboratory of Theoretical and Computational Chemistry Chongqing University 401331 Chongqing China

4. College of Chemistry and Chemical Engineering Henan Polytechnic University 454000 Jiaozuo China

5. Beijing National Laboratory for Molecular Science College of Chemistry and Molecular Engineering Peking University 100871 Beijing China

6. School of Materials Science and Engineering Peking University 100871 Beijing China

7. Key Laboratory of Bio-inspired Materials and Interfacial Science Technical Institute of Physics and Chemistry Chinese Academy of Sciences 100871 Beijing China

Abstract

AbstractThe dual emission (DE) characteristics of atomically precise copper nanoclusters (Cu NCs) are of significant theoretical and practical interest. Despite this, the underlying mechanism driving DE in Cu NCs remains elusive, primarily due to the complexities of excited state processes. Herein, a novel [Cu4(PPh3)4(C≡C−p−NH2C6H4)3]PF6 (Cu4) NC, shielded by alkynyl and exhibiting DE, was synthesized. Hydrostatic pressure was applied to Cu4, for the first time, to investigate the mechanism of DE. With increasing pressure, the higher‐energy emission peak of Cu4 gradually disappeared, leaving the lower‐energy emission peak as the dominant emission. Additionally, the Cu4 crystal exhibited notable piezochromism transitioning from cyan to orange. Angle‐dispersive synchrotron X‐ray diffraction results revealed that the reduced inter‐cluster distances under pressure brought the peripheral ligands closer, leading to the formation of new C−H⋅⋅⋅N and N−H⋅⋅⋅N hydrogen bonds in Cu4. It is proposed that these strengthened hydrogen bond interactions limit the ligands′ vibration, resulting in the vanishing of the higher‐energy peak. In situ high‐pressure Raman and vibrationally resolved emission spectra demonstrated that the benzene ring C=C stretching vibration is the structural source of the DE in Cu4.

Funder

China Postdoctoral Science Foundation

Publisher

Wiley

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