Interface and integration challenges in 0D/2D hybrid photodetection: optimizing assembly, interface and charge transfer
0D/2D混合光电探测中的界面与集成挑战:优化组装、界面和电荷转移
0D/2Dハイブリッド光検出におけるインタフェースと統合の課題:組立、インタフェース、および電荷移動の最適化
0D/2D 하이브리드 광검출에서의 인터페이스 및 통합 도전: 조립, 인터페이스 및 전하 이동 최적화
Desafíos de interfaz e integración en la detección fotónica híbrida 0D/2D: optimizando el ensamblaje, la interfaz y la transferencia de carga
Défis d'interface et d'intégration dans la détection photométrique hybride 0D/2D : optimisation de l'assemblage, de l'interface et du transfert de charge
Проблемы интерфейса и интеграции в гибридном фотоприемнике 0D/2D: оптимизация сборки, интерфейса и переноса заряда
Shamima Afroz, Jeongyong Kim
Department of Energy Science, Sungkyunkwan University, Suwon 16419, Republic of Korea
Zero-dimensional (0D) quantum-confined nanomaterials and two-dimensional (2D) semiconductors offer complementary optoelectronic properties-strong broadband absorption with size-tunable bandgaps in the former, and gate-controlled carrier transport with efficient electrostatic control. Their integration yields photodetectors with enhanced responsivity, extended spectral coverage, and tunable photogain compared to single-component devices.
However, performance is critically governed by interfacial properties rather than intrinsic material characteristics alone. This review provides fabrication strategies and interface engineering approaches in 0D/2D systems, emphasizing how interfacial phenomena control charge transfer dynamics, trap-state density, and operational stability. We analyze solution-processed and in-situ growth methods, discuss band alignment, ligand chemistry, and defect passivation effects on photodetection mechanisms, and assess gain-speed trade-offs inherent to these architectures. Key challenges including device variability, environmental degradation and scalability limitations are addressed.
By connecting fabrication choices to interface quality and device performance, this review establishes design principles for advancing 0D/2D hybrid photodetection toward practical imaging, sensing and communication applications.