Scalable Synthesis of 2D ErOCl with Sub‐meV Narrow Emissions at Telecom Band

P Panqi Huang (School of Chemistry and Chemical Engineering, Frontiers Science Centre for Transformative Molecules) Y Youxuan Wu M Meng Gao (School of Physical Sciences and CAS Key Laboratory of Vacuum Physics) J Junxin Chen B Bowen Ma J Jiuxiang Dai (School of Chemistry and Chemical Engineering, Frontiers Science Centre for Transformative Molecules) J Jing Zhang Z Ziye Zhu (Eastern Institute for Advanced Study, Eastern Institute of Technology 2 , Ningbo, Zhejiang 315200,) W Wen Xiao Z Zhitong Jin (School of Chemistry and Chemical Engineering, Frontiers Science Centre for Transformative Molecules) W Wu Zhou W Wenbin Li (College of Life Science, Liaoning Normal University, Dalian, China.) Y Ya‐Qing Bie (State Key Lab of Optoelectronic Materials and Technologies Guangdong Province Key Laboratory of Display Material and Technology School of Electronics and Information Technology Sun Yat‐sen University Guangzhou 510275 China) L Lin Zhou

Abstract

AbstractVan der Waals (vdWs) materials are promising candidates for hetero‐integration with silicon photonics toward miniaturization and integration. VdWs materials like molybdenum telluride and black phosphorus, despite being prominent, exhibit air sensitivity, and their room temperature emissions can be significantly broadened by tens of meV. Here, a self‐encapsulation strategy is developed to scalably synthesize robust 2D vdWs ErOCl with sub‐meV narrow emissions at the telecom C‐band. Diverse 2D rare earth materials are also grown via chemical vapor deposition (TmOCl, YbOCl, HoOCl, DyOCl, SmOCl, NdOCl, TbOCl, GdOCl, EuOCl, and PrOCl), demonstrating the strategy's generalizability. The as‐grown ErOCl exhibits high crystalline quality and excellent ambient and thermal stability (300 °C). Photoluminescence analysis reveals a series of narrow emissions across the visible to near‐infrared spectrum. The ErOCl's emission at the telecom band is narrowest among 2D luminescent materials, and suitable for integrating with photonic chips. Temperature‐dependent photoluminescence spectra facilitate the understanding of emission mechanisms, analyzed using a crystal field perturbation model. Moreover, these emissions can be tuned by external magnetic fields. This research not only pioneers a novel strategy for synthesizing 2D rare earth materials but also paves the way for innovative building blocks in the realm of on‐chip optical communications.

Article Details

Volume / Issue Vol. 37, Issue 8
Published February 01, 2025
ISSN 0935-9648
Publisher Unknown Publisher

Journal Info

Advanced Materials

Unknown Publisher

ISSN: 0935-9648 Physical Sciences

Authors (14)

P

Panqi Huang

School of Chemistry and Chemical Engineering, Frontiers Science Centre for Transformative Molecules

Y

Youxuan Wu

M

Meng Gao

School of Physical Sciences and CAS Key Laboratory of Vacuum Physics

J

Junxin Chen

B

Bowen Ma

J

Jiuxiang Dai

School of Chemistry and Chemical Engineering, Frontiers Science Centre for Transformative Molecules

J

Jing Zhang

Z

Ziye Zhu

Eastern Institute for Advanced Study, Eastern Institute of Technology 2 , Ningbo, Zhejiang 315200,

W

Wen Xiao

Z

Zhitong Jin

School of Chemistry and Chemical Engineering, Frontiers Science Centre for Transformative Molecules

W

Wu Zhou

W

Wenbin Li

College of Life Science, Liaoning Normal University, Dalian, China.

Y

Ya‐Qing Bie

State Key Lab of Optoelectronic Materials and Technologies Guangdong Province Key Laboratory of Display Material and Technology School of Electronics and Information Technology Sun Yat‐sen University Guangzhou 510275 China

L

Lin Zhou