Quantum oscillations of holes in GaN
Chuan F.C. Chang, Joseph E. Dill, Zexuan Zhang, Jie-Cheng Chen, Naomi, Pieczulewski, Samuel J. Bader, Oscar Ayala Valenzuela, Scott A. Crooker,, Fedor F. Balakirev, Ross D. McDonald, Jimy Encomendero, David A. Muller,, Feliciano Giustino, Debdeep Jena, Huili Grace Xing

TL;DR
This paper reports the first observation of quantum oscillations of holes in GaN, revealing detailed properties of valence bands and opening new avenues for quantum engineering in wide bandgap semiconductors.
Contribution
It demonstrates the first detection of hole quantum oscillations in GaN, providing insights into valence band structure and hole transport properties at high magnetic fields.
Findings
Observation of Shubnikov-de Haas oscillations in p-type GaN
Record-high hole mobilities of ~1900 and ~400 cm2/Vs at 3K
Extraction of effective masses and sheet densities of light and heavy holes
Abstract
GaN has emerged to be a major semiconductor akin to silicon due to its revolutionary impacts in solid state lighting, critically enabled by p-type doping, and high-performance radio-frequency and power electronics. Suffering from inefficient hole doping and low hole mobility, quantum oscillations in p-type GaN have not been observed, hindering fundamental studies of valence bands and hole transport in GaN. Here, we present the first observation of quantum oscillations of holes in GaN. Shubnikov-de Haas (SdH) oscillations in hole resistivity are observed in a quantum-confined two-dimensional hole gas at a GaN/AlN interface, where polarization-induced doping overcomes thermal freeze-out, and a sharp and clean interface boosts the hole mobility enough to unmask the quantum oscillations. These holes degenerately occupy the light and heavy hole bands of GaN and have record-high mobilities of…
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Taxonomy
TopicsGaN-based semiconductor devices and materials · Semiconductor Quantum Structures and Devices
