Band structure tuning of g-C3N4 via sulfur doping for broadband near-infrared ultrafast photonic applications

Author:

Dong Li1,Chu Hongwei1ORCID,Xu Shiping2,Li Ying3,Zhao Shengzhi1,Li Dechun1ORCID

Affiliation:

1. School of Information Science and Engineering , Shandong University , Qingdao 266237 , China

2. School of Environmental Science and Engineering , Shandong University , Qingdao 266237 , China

3. Key Laboratory of Colloid and Interface Chemistry , Ministry of Education, and School of Chemistry and Chemical Engineering, Shandong University , Jinan 250100 , China

Abstract

Abstract Graphitic carbon nitride (g-C3N4) featuring a stable heptazine ring structure and high polymerization degree, was indexed as a high thermochemical stability material, attracting rising research enthusiasm for diverse applications. However, the poor near-infrared (NIR) optical absorption and resulting limited NIR applications were pronounced for g-C3N4 due to its large bandgap of 2.7 eV. In the present work, sulfur-doping was manifested by first-principles calculations to introduce impurity level and result in anisotropic spin splitting in g-C3N4 for enhancing broadband nonlinear optical characteristics in NIR regime. The modified sulfur-doped g-C3N4 (S-C3N4) exhibited the maximum effective nonlinear absorption coefficient to be −0.82 cm/GW. Pulse duration within hundred nanoseconds was realized with high modulation stability employing S-C3N4 as saturable absorber in Q-switching operations. Moreover, broadband ultrafast photonics properties were successfully demonstrated in constructed ytterbium-doped and erbium-doped fiber lasers, generating highly stable dissipative soliton and traditional soliton mode-locking pulses. The presented S-C3N4 nanomaterial with remarkable nonlinear optical performances might explicitly boost the development and application of g-C3N4 materials in advanced optoelectronic and ultrafast photonic devices.

Publisher

Walter de Gruyter GmbH

Subject

Electrical and Electronic Engineering,Atomic and Molecular Physics, and Optics,Electronic, Optical and Magnetic Materials,Biotechnology

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