Wide and Ultrawide Bandgap Power Semiconductors: A Comprehensive System-Level Review
Силовые полупроводники с широкой и сверхширокой запрещённой зоной: комплексный системный обзор
2026-02-15
SCID: 54.1/agthvshd
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gallium nitride (GaN)power electronicssilicon carbide (SiC)ultrawide-bandgap semiconductorswide-bandgap semiconductors
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Abstract (AI)
This review analyzes the transition from silicon to wide-bandgap (WBG) and ultrawide-bandgap (UWBG) semiconductor materials for power electronics, focusing on Silicon Carbide (SiC) and Gallium Nitride (GaN) technologies. Following a PRISMA-based systematic review methodology, we analyzed 94 peer-reviewed publications spanning device technology, converter architectures, and system applications. We employ a bottom-up approach, progressing from fundamental material properties through device architectures and converter topologies to system-level implications. We examine how intrinsic material properties enable operation at elevated temperatures, voltages, and frequencies while minimizing losses. Through analysis of Figures of Merit and system-level Key Performance Indicators, we quantify WBG benefits across automotive, industrial, renewable energy, and consumer electronics sectors, demonstrating 3–5× power density improvements and 20–40% cost reductions. The review presents emerging device technologies, including vertical GaN for medium-voltage applications and monolithic bidirectional switches (BDSs), enabling single-stage power conversion. We provide the first comprehensive topology-level comparison of emerging vertical GaN and monolithic bidirectional switches against established SiC solutions, identifying specific applications where each technology offers advantages. A comprehensive topology-by-topology comparison between SiC and GaN is provided, offering design guidelines for device selection. The review addresses practical constraints, including dynamic on-resistance degradation, threshold voltage instability, and electromagnetic interference challenges for both SiC and GaN. Finally, we examine emerging UWBG materials (β-Ga2O3, AlN, c-BN, Diamond) and their development status, manufacturing challenges, supply chain considerations, and commercialization prospects for ultra-high-voltage applications.
Key Findings
1
A PRISMA-based review of 94 peer-reviewed studies systematically connects WBG and UWBG materials, device architectures, converter topologies, and system applications.
2
Across automotive, industrial, renewable-energy, and consumer-electronics applications, WBG technologies provide 3–5× power-density improvements and 20–40% cost reductions.
3
SiC and GaN enable higher-temperature, higher-voltage, and higher-frequency operation while reducing power losses compared with silicon-based technologies.
4
Topology-level comparisons identify application-specific advantages of vertical GaN, monolithic bidirectional switches, SiC, and GaN, while highlighting dynamic on-resistance degradation, threshold-voltage instability, and electromagnetic-interference challenges.
5
Vertical GaN and monolithic bidirectional switches emerge as important technologies for medium-voltage and single-stage power-conversion applications, respectively.
6
β-Ga2O3, AlN, cubic boron nitride, and diamond show promise for ultra-high-voltage applications, but manufacturing, supply-chain, and commercialization challenges remain.
Research Object
Wide-bandgap and ultrawide-bandgap power semiconductor technologies, particularly SiC, GaN, and emerging UWBG materials, across devices, converters, and power-electronic systems
Research Subject
Material-, device-, topology-, and system-level performance, benefits, limitations, and application suitability of WBG/UWBG power semiconductors
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2026-02-15
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