Sanh Vo Thi, Malkeshkumar Patel, Thanh Tai Nguyen, Sourov Hossain, Seoyoung Lim, Ngoc Le Trinh, Han-Bo-Ram Lee, Dong-Wook Kim* and Joondong Kim*,
{"title":"用于柔性肖特基光探测和增强电荷输运的透明电极超薄银膜","authors":"Sanh Vo Thi, Malkeshkumar Patel, Thanh Tai Nguyen, Sourov Hossain, Seoyoung Lim, Ngoc Le Trinh, Han-Bo-Ram Lee, Dong-Wook Kim* and Joondong Kim*, ","doi":"10.1021/acsaelm.5c0049810.1021/acsaelm.5c00498","DOIUrl":null,"url":null,"abstract":"<p >Silver nanowire (AgNW)-based flexible devices with excellent transparency represent promising advancements for next-generation optoelectronic applications. Despite the inherently high conductivity of AgNW, open voids between nanowires often limit efficient charge collection, affecting overall device performance. This study addresses these limitations by introducing a highly conductive hybrid design comprising AgNW/Ag(O)/Al-doped ZnO (AZO). Compared with standalone AgNW, the addition of oxygen promotes the development of a continuous ultrathin Ag(O) layer (6 nm) inside the AgNW network’s macro-voids, resulting in 16 times greater mobility and improved thermal stability. This significant mobility improvement contributes to a 72% reduction in sheet resistance, a critical factor for optimizing device efficiency. Furthermore, Kelvin probe force microscopy (KPFM) analysis confirms the development of a Schottky junction at the Ag(O)/ZnO interface, which enhances charge generation, separation, and collection. This contributes to polyethylene terephthalate(PET)/ITO/ZnO/AgNW/Ag(O)/AZO-based photodetectors (PDs) achieving an impressive 21.5% increase in photocurrent efficiency compared to standalone AgNW-based PDs. The AZO layer also plays a crucial role by preserving the devices’ structural integrity and transparency, ensuring stable performance during prolonged operation and enabling the device to withstand various bending cycles. The device also demonstrates wide-band and wide-field-of-view photosensing─key for advanced cameras and antennas─reinforcing its role in next-generation optoelectronics.</p>","PeriodicalId":3,"journal":{"name":"ACS Applied Electronic Materials","volume":"7 9","pages":"4339–4351 4339–4351"},"PeriodicalIF":4.7000,"publicationDate":"2025-04-08","publicationTypes":"Journal Article","fieldsOfStudy":null,"isOpenAccess":false,"openAccessPdf":"","citationCount":"0","resultStr":"{\"title\":\"Ultrathin Ag Film of Transparent Electrode for Flexible Schottky Photodetection and Enhanced Charge Transport\",\"authors\":\"Sanh Vo Thi, Malkeshkumar Patel, Thanh Tai Nguyen, Sourov Hossain, Seoyoung Lim, Ngoc Le Trinh, Han-Bo-Ram Lee, Dong-Wook Kim* and Joondong Kim*, \",\"doi\":\"10.1021/acsaelm.5c0049810.1021/acsaelm.5c00498\",\"DOIUrl\":null,\"url\":null,\"abstract\":\"<p >Silver nanowire (AgNW)-based flexible devices with excellent transparency represent promising advancements for next-generation optoelectronic applications. Despite the inherently high conductivity of AgNW, open voids between nanowires often limit efficient charge collection, affecting overall device performance. This study addresses these limitations by introducing a highly conductive hybrid design comprising AgNW/Ag(O)/Al-doped ZnO (AZO). Compared with standalone AgNW, the addition of oxygen promotes the development of a continuous ultrathin Ag(O) layer (6 nm) inside the AgNW network’s macro-voids, resulting in 16 times greater mobility and improved thermal stability. This significant mobility improvement contributes to a 72% reduction in sheet resistance, a critical factor for optimizing device efficiency. Furthermore, Kelvin probe force microscopy (KPFM) analysis confirms the development of a Schottky junction at the Ag(O)/ZnO interface, which enhances charge generation, separation, and collection. This contributes to polyethylene terephthalate(PET)/ITO/ZnO/AgNW/Ag(O)/AZO-based photodetectors (PDs) achieving an impressive 21.5% increase in photocurrent efficiency compared to standalone AgNW-based PDs. The AZO layer also plays a crucial role by preserving the devices’ structural integrity and transparency, ensuring stable performance during prolonged operation and enabling the device to withstand various bending cycles. 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Ultrathin Ag Film of Transparent Electrode for Flexible Schottky Photodetection and Enhanced Charge Transport
Silver nanowire (AgNW)-based flexible devices with excellent transparency represent promising advancements for next-generation optoelectronic applications. Despite the inherently high conductivity of AgNW, open voids between nanowires often limit efficient charge collection, affecting overall device performance. This study addresses these limitations by introducing a highly conductive hybrid design comprising AgNW/Ag(O)/Al-doped ZnO (AZO). Compared with standalone AgNW, the addition of oxygen promotes the development of a continuous ultrathin Ag(O) layer (6 nm) inside the AgNW network’s macro-voids, resulting in 16 times greater mobility and improved thermal stability. This significant mobility improvement contributes to a 72% reduction in sheet resistance, a critical factor for optimizing device efficiency. Furthermore, Kelvin probe force microscopy (KPFM) analysis confirms the development of a Schottky junction at the Ag(O)/ZnO interface, which enhances charge generation, separation, and collection. This contributes to polyethylene terephthalate(PET)/ITO/ZnO/AgNW/Ag(O)/AZO-based photodetectors (PDs) achieving an impressive 21.5% increase in photocurrent efficiency compared to standalone AgNW-based PDs. The AZO layer also plays a crucial role by preserving the devices’ structural integrity and transparency, ensuring stable performance during prolonged operation and enabling the device to withstand various bending cycles. The device also demonstrates wide-band and wide-field-of-view photosensing─key for advanced cameras and antennas─reinforcing its role in next-generation optoelectronics.
期刊介绍:
ACS Applied Electronic Materials is an interdisciplinary journal publishing original research covering all aspects of electronic materials. The journal is devoted to reports of new and original experimental and theoretical research of an applied nature that integrate knowledge in the areas of materials science, engineering, optics, physics, and chemistry into important applications of electronic materials. Sample research topics that span the journal's scope are inorganic, organic, ionic and polymeric materials with properties that include conducting, semiconducting, superconducting, insulating, dielectric, magnetic, optoelectronic, piezoelectric, ferroelectric and thermoelectric.
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