Ziming Wu, Linfeng Ye, Zihan Lin, Linlei Jiang, Shuai Li, Banghao Xie, Yufei Liu, Qichang Hu
{"title":"硅基自供电太阳盲紫外探测器的协同双内置电场和HfO2波段工程","authors":"Ziming Wu, Linfeng Ye, Zihan Lin, Linlei Jiang, Shuai Li, Banghao Xie, Yufei Liu, Qichang Hu","doi":"10.1063/5.0290624","DOIUrl":null,"url":null,"abstract":"Hafnium oxide (HfO2), renowned for its high dielectric constant and excellent CMOS process compatibility, is a cornerstone material in logic chips. Its wide bandgap and low intrinsic carrier concentration suggest potential for solar-blind ultraviolet photodetection. However, its prohibitively wide bandgap and low conductivity lead to inefficient photogenerated carrier concentration, posing challenges for direct application in solar-blind detection. To overcome these limitations, we incorporate highly conductive In2O3 into HfO2, yielding amorphous InHfO films with a precisely tuned bandgap (Eg ≈ 4.43 eV). Leveraging this material, a self-powered graphene/amorphous InHfO/Si heterojunction solar-blind ultraviolet photodetector is constructed. The synergistic effect of dual built-in electric fields induced by the graphene layer significantly enhances photogenerated carrier separation and collection efficiency, thereby overcoming the inherent limitation of low carrier concentration in the absorber. The device achieves an open-circuit voltage of 0.41 V, with a maximum responsivity of 13.67 mA/W and a detectivity of 2.21 × 1012 Jones at 255 nm under zero bias. The response times are characterized by a rise time of 46 ms and a decay time of 106 ms. Notably, a high solar-blind-visible rejection ratio of 2039 is achieved, underscoring its excellent spectral selectivity. This work pioneers the application of HfO2 in solar-blind ultraviolet photodetection and provides a material system and heterostructure design scheme for silicon-based self-powered solar-blind detectors. Furthermore, it offers an innovative solution for the CMOS-compatible integration of solar-blind UV photodetectors, laying crucial technological foundations for future on-chip optoelectronic sensing units within optoelectronic integrated circuits.","PeriodicalId":8094,"journal":{"name":"Applied Physics Letters","volume":"93 1","pages":""},"PeriodicalIF":3.6000,"publicationDate":"2025-10-17","publicationTypes":"Journal Article","fieldsOfStudy":null,"isOpenAccess":false,"openAccessPdf":"","citationCount":"0","resultStr":"{\"title\":\"Synergistic dual built-in electric fields and HfO2 band engineering for self-powered solar-blind UV detectors on silicon\",\"authors\":\"Ziming Wu, Linfeng Ye, Zihan Lin, Linlei Jiang, Shuai Li, Banghao Xie, Yufei Liu, Qichang Hu\",\"doi\":\"10.1063/5.0290624\",\"DOIUrl\":null,\"url\":null,\"abstract\":\"Hafnium oxide (HfO2), renowned for its high dielectric constant and excellent CMOS process compatibility, is a cornerstone material in logic chips. Its wide bandgap and low intrinsic carrier concentration suggest potential for solar-blind ultraviolet photodetection. However, its prohibitively wide bandgap and low conductivity lead to inefficient photogenerated carrier concentration, posing challenges for direct application in solar-blind detection. To overcome these limitations, we incorporate highly conductive In2O3 into HfO2, yielding amorphous InHfO films with a precisely tuned bandgap (Eg ≈ 4.43 eV). Leveraging this material, a self-powered graphene/amorphous InHfO/Si heterojunction solar-blind ultraviolet photodetector is constructed. The synergistic effect of dual built-in electric fields induced by the graphene layer significantly enhances photogenerated carrier separation and collection efficiency, thereby overcoming the inherent limitation of low carrier concentration in the absorber. The device achieves an open-circuit voltage of 0.41 V, with a maximum responsivity of 13.67 mA/W and a detectivity of 2.21 × 1012 Jones at 255 nm under zero bias. The response times are characterized by a rise time of 46 ms and a decay time of 106 ms. Notably, a high solar-blind-visible rejection ratio of 2039 is achieved, underscoring its excellent spectral selectivity. This work pioneers the application of HfO2 in solar-blind ultraviolet photodetection and provides a material system and heterostructure design scheme for silicon-based self-powered solar-blind detectors. 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Synergistic dual built-in electric fields and HfO2 band engineering for self-powered solar-blind UV detectors on silicon
Hafnium oxide (HfO2), renowned for its high dielectric constant and excellent CMOS process compatibility, is a cornerstone material in logic chips. Its wide bandgap and low intrinsic carrier concentration suggest potential for solar-blind ultraviolet photodetection. However, its prohibitively wide bandgap and low conductivity lead to inefficient photogenerated carrier concentration, posing challenges for direct application in solar-blind detection. To overcome these limitations, we incorporate highly conductive In2O3 into HfO2, yielding amorphous InHfO films with a precisely tuned bandgap (Eg ≈ 4.43 eV). Leveraging this material, a self-powered graphene/amorphous InHfO/Si heterojunction solar-blind ultraviolet photodetector is constructed. The synergistic effect of dual built-in electric fields induced by the graphene layer significantly enhances photogenerated carrier separation and collection efficiency, thereby overcoming the inherent limitation of low carrier concentration in the absorber. The device achieves an open-circuit voltage of 0.41 V, with a maximum responsivity of 13.67 mA/W and a detectivity of 2.21 × 1012 Jones at 255 nm under zero bias. The response times are characterized by a rise time of 46 ms and a decay time of 106 ms. Notably, a high solar-blind-visible rejection ratio of 2039 is achieved, underscoring its excellent spectral selectivity. This work pioneers the application of HfO2 in solar-blind ultraviolet photodetection and provides a material system and heterostructure design scheme for silicon-based self-powered solar-blind detectors. Furthermore, it offers an innovative solution for the CMOS-compatible integration of solar-blind UV photodetectors, laying crucial technological foundations for future on-chip optoelectronic sensing units within optoelectronic integrated circuits.
期刊介绍:
Applied Physics Letters (APL) features concise, up-to-date reports on significant new findings in applied physics. Emphasizing rapid dissemination of key data and new physical insights, APL offers prompt publication of new experimental and theoretical papers reporting applications of physics phenomena to all branches of science, engineering, and modern technology.
In addition to regular articles, the journal also publishes invited Fast Track, Perspectives, and in-depth Editorials which report on cutting-edge areas in applied physics.
APL Perspectives are forward-looking invited letters which highlight recent developments or discoveries. Emphasis is placed on very recent developments, potentially disruptive technologies, open questions and possible solutions. They also include a mini-roadmap detailing where the community should direct efforts in order for the phenomena to be viable for application and the challenges associated with meeting that performance threshold. Perspectives are characterized by personal viewpoints and opinions of recognized experts in the field.
Fast Track articles are invited original research articles that report results that are particularly novel and important or provide a significant advancement in an emerging field. Because of the urgency and scientific importance of the work, the peer review process is accelerated. If, during the review process, it becomes apparent that the paper does not meet the Fast Track criterion, it is returned to a normal track.