Emergence of a Bandgap in Nano-Scale Graphite: A Computational and Experimental Study
Abstract
Bandgaps in layered materials are critical for enabling functionalities such as tunable photodetection, efficient energy conversion, and nonlinear optical responses, which are essential for next-generation photonic and quantum devices. Gap engineering could form heterostructures with complementary materials like transition metal dichalcogenides or perovskites for multi-functional devices. Graphite, conventionally regarded as a gapless material, exhibits a bandgap of ~100 meV in nano-scale patterned highly oriented pyrolytic graphite (HOPG), as revealed by angle-resolved photoemission spectroscopy (ARPES) and Raman measurements. Our state-of-the-art calculations, incorporating photoemission matrix element effects, predict this bandgap with remarkable accuracy and attribute it to mechanical distortions introduced during patterning. This work bridges theory and experiment, providing the direct evidence of a tunable bandgap in HOPG. Beyond its fundamental significance, this finding opens new possibilities for designing materials with tailored electronic properties, enabling advancements in terahertz devices and optoelectronics.
Cite
@article{arxiv.2411.14244,
title = {Emergence of a Bandgap in Nano-Scale Graphite: A Computational and Experimental Study},
author = {Sujinda Chaiyachad and Trung-Phuc Vo and Warakorn Jindata and Sirisak Singsen and Tanachat Eknapakul and Chutchawan Jaisuk and Patrick Le Fevre and Francois Bertran and Donghui Lu and Yaobo Huang and Hideki Nakajima and Watchara Liewrian and Ittipon Fongkaew and Jan Minar and Worawat Meevasana},
journal= {arXiv preprint arXiv:2411.14244},
year = {2025}
}
Comments
36 pages, 9 figures