Pressure‐Induced Emission Luminogens Enable Optical Logic Gates Toward Lighting, Scintillators, and Anti‐Counterfeiting

W Wenya Zhao (College of Chemistry and Material Science Hebei Normal University Shijiazhuang China) G Guanjun Xiao (State Key Laboratory of Superhard Materials, College of Physics) S Shi Qiu Y Yuchen Shang Y Yue Qin J Jiayi Yang J Jingtian Wang J Jiajia Ning Y Yanjun Fang Q Qingfeng Dong Z Zhaodong Liu S Shunxin Li J Junfeng Gao (Key Laboratory of Materials Modification by Laser, Ion and Electron Beams, Ministry of Education, Dalian University of Technology, Dalian, China.) B Bo Zou (State Key Laboratory of High Pressure and Superhard Materials, College of Physics)

Abstract

AbstractThe pressure‐induced emission luminogens (PIEgens) opened the door to highly emissive materials. However, the high‐pressure phase with excellent optoelectrical properties is difficult to stabilize at ambient conditions, seriously limiting the practical applications. Here, we first lighted up non‐emissive zero‐dimensional (0D) metal halide (C25H22P)2SnCl6 via pressure engineering, ultimately yielding the bright emission. Note that the quenched (C25H22P)2SnCl6 after pressure treatment of 20.0 GPa exhibited very bright blue–white emission. This irreversible photoluminescence (PL) transition was associated with irreversible amorphization by increasing the potential barrier of phase transition through the steric hindrance effect. The increased distortion of inorganic octahedra and the enhanced hydrogen bond interaction within the amorphous (C25H22P)2SnCl6 after pressure treatment were responsible for the bright emission. Thus, pressure‐triggered PL turn‐on behavior can serve as a robust optical switchable logic gate from the initially dark state “0” to the bright state “1”. Furthermore, the pressure‐treated (C25H22P)2SnCl6 exhibited an unexpected excitation‐dependent emission. The unique characteristic of “PIE” with different colors can be decoded the Morse code encrypted with the pressure‐treated (C25H22P)2SnCl6 and different excitations. The quenched (C25H22P)2SnCl6‐based phosphor‐converted light‐emitting diodes (pc‐LEDs), X‐ray dose rate detection and centimeter‐level patterns highlighted great potentials in lighting, display, scintillators, and anti‐counterfeiting.

Article Details

Volume / Issue Vol. 64, Issue 23
Published June 02, 2025
ISSN 1433-7851
Publisher Wiley

Journal Info

Angewandte Chemie International Edition

Wiley

ISSN: 1433-7851 Physical Sciences

Authors (14)

W

Wenya Zhao

College of Chemistry and Material Science Hebei Normal University Shijiazhuang China

G

Guanjun Xiao

State Key Laboratory of Superhard Materials, College of Physics

S

Shi Qiu

Y

Yuchen Shang

Y

Yue Qin

J

Jiayi Yang

J

Jingtian Wang

J

Jiajia Ning

Y

Yanjun Fang

Q

Qingfeng Dong

Z

Zhaodong Liu

S

Shunxin Li

J

Junfeng Gao

Key Laboratory of Materials Modification by Laser, Ion and Electron Beams, Ministry of Education, Dalian University of Technology, Dalian, China.

B

Bo Zou

State Key Laboratory of High Pressure and Superhard Materials, College of Physics