Quantum state engineering with ultra-short-period (AlN)m/(GaN)nsuperlattices for narrowband deep-ultraviolet detection

材料科学 超晶格 光电子学 紫外线 光探测 窄带 吸收(声学) 量子阱 光电探测器 光学 物理 激光器 复合材料
作者
Na Gao,Wei Lin,Xue Chen,Kai Huang,Shuping Li,Jinchai Li,Hangyang Chen,Yang Xu,Ji Li,Edward T. Yu,Junyong Kang
出处
期刊:Nanoscale [Royal Society of Chemistry]
卷期号:6 (24): 14733-14739 被引量:16
标识
DOI:10.1039/c4nr04286g
摘要

Ultra-short-period (AlN)m/(GaN)n superlattices with tunable well and barrier atomic layer numbers were grown by metal-organic vapour phase epitaxy, and employed to demonstrate narrowband deep ultraviolet photodetection. High-resolution transmission electron microscopy and X-ray reciprocal space mapping confirm that superlattices containing well-defined, coherently strained GaN and AlN layers as thin as two atomic layers (∼ 0.5 nm) were grown. Theoretical and experimental results demonstrate that an optical absorption band as narrow as 9 nm (210 meV) at deep-ultraviolet wavelengths can be produced, and is attributable to interband transitions between quantum states along the [0001] direction in ultrathin GaN atomic layers isolated by AlN barriers. The absorption wavelength can be precisely engineered by adjusting the thickness of the GaN atomic layers because of the quantum confinement effect. These results represent a major advance towards the realization of wavelength selectable and narrowband photodetectors in the deep-ultraviolet region without any additional optical filters.

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