Acta Photonica Sinica, Volume. 53, Issue 7, 0753311(2024)
Characteristics of Al-doped ZnO Nanowire Arrays Ultraviolet Photodetectors
[1] X ZHAO, Q LI, L X XU et al. Interface engineering in 1D ZnO-based heterostructures for photoelectrical devices. Advanced Functional Materials, 32, 2106887(2022).
[2] K W ZHANG, Y YANG. Thermo-phototronic effect enhanced InP/ZnO nanorod heterojunction solar cells for self-powered wearable electronics. Advanced Functional Materials, 27, 1703331(2017).
[3] S S CHEN, T R ZHAN, X H PAN et al. UV electroluminescence emissions from high-quality ZnO/ZnMgO multiple quantum well active layer light-emitting diodes. RSC Advances, 11, 38949-38955(2021).
[4] D VANMAEKELBERGH, L K VAN VUGT. ZnO nanowire lasers. Nanoscale, 3, 2783-2800(2011).
[5] D WANG, Y YIN, P C XU et al. Catalytic-induced sensing effect of triangular CeO2 nanoflakes for enhanced BTEX vapor detection with conventional ZnO gas sensors. Journal of Materials Chemistry A, 8, 11188-11194(2020).
[6] Minghui BAI, Xian LIU, Qiuping ZHANG et al. Preparation and photocatalytic properties of highly stable Mn:ZnO/Mn2O3 nanocomposite photocatalysts. Acta Photonica Sinica, 52, 0616001(2023).
[7] Zhaolin YUAN, Yujie HU, Jihui LV et al. Characteristics of ZnO nanowire arrays/PVK heterojunction ultraviolet photodetector. Acta Optica Sinica, 42, 2204001(2022).
[8] Z YUAN, W WANG, H WU et al. A solution-processed ZnO quantum dots ultraviolet photodetector with high performance driven by low operating voltage. Materials Letters, 278, 128413(2020).
[9] H WU, Z YUAN, B WANG et al. Synthesis of single-crystalline ZnO nanoflowers for a superhigh-sensitivity ultraviolet photodetector application. Optical Materials, 122, 111683(2021).
[10] Y JIN, L P WANG, B SUN et al. Solution-processed ultraviolet photodetectors based on colloidal ZnO nanoparticles. Nano Letters, 8, 1649-1653(2008).
[11] P GU, X H ZHU, D Y YANG. Vertically aligned ZnO nanorods arrays grown by chemical bath deposition for ultraviolet photodetectors with high response performance. Journal of Alloys and Compounds, 815, 152346(2020).
[12] L YIN, H DING, Z YUAN et al. A simple and transparent well-aligned ZnO nanowire array ultravioletphotodetector with high responsivity. Optical Materials, 80, 149-153(2018).
[13] K SUN, W XIAO, S YE et al. Embedded metal oxide plasmonics using local plasma oxidation of AZO for planar metasurfaces. Advanced Materials, 32, 2001534(2020).
[14] X H LIU, H Q WANG, Y R LI et al. Regular organic solar cells with efficiency over 10% and promoted stability by ligand- and thermal annealing-free Al-doped ZnO cathode interlayer. Advanced Science, 4, 1700053(2017).
[15] C M PELICANO, H YANAGI. Enhanced charge transport in Al-doped ZnO nanotubes designed via simultaneous etchingand Al doping of H2O-oxidized ZnO nanorods for solar cell applications. Journal of Materials Chemistry C, 7, 4653-4661(2019).
[16] R L YAN, T TAKAHASHI, H ZENG et al. Enhancement of pH tolerance in conductive Al-doped ZnO nanofilms via sequential annealing. ACS Applied Electronic Materials, 3, 955-962(2021).
[17] M M JIANG, G H HE, H Y CHEN et al. Wavelength-tunable electroluminescent light sources from individual Ga-doped ZnO microwires. Small, 13, 1604034(2017).
[18] N XU, Z YUAN, B WANG et al. Significant improvement in the performance of well-aligned ZnO nanowire arrays ultraviolet photodetector by Ga doping. Microelectronic Engineering, 260, 111787(2022).
[19] S GHOSH, M SAHA, S K DE. Tunable surface plasmon resonance and enhanced electricalconductivity of In doped ZnO colloidal nanocrystals. Nanoscale, 6, 7039-7051(2014).
[20] F Z LI, Y MENG, X L KANG et al. High-mobility In and Ga co-doped ZnO manowires for high-performance transistors and ultraviolet photodetectors. Nanoscale, 12, 16153-16161(2020).
[21] F KHAN, S H BAEK, J H KIM. Influence of Ag doping on structural, optical, and photoluminescence properties of nanostructured AZO films by sol-gel technique. Journal of Alloys and Compounds, 584, 190-194(2014).
[22] S PARK, T Y EOM, R H JEONG et al. Synthesis and characterization of Al-doped ZnO/CdO heterostructured nanocomposites for enhancing NO2 gas sensing performance. Applied Surface Science, 657, 159746(2024).
[23] N XU, Z YUAN, F NIE et al. Hydrothermal growth and ultraviolet sensing performance of well-aligned Ga-doped ZnO nanowire arrays. Optical Materials, 133, 112995(2022).
[24] C WANGR, Y LINH, C H WANG et al. Fabrication of a large-area Al-doped ZnO nanowire array photosensor with enhanced photoresponse by straining. Advanced Functional Materials, 22, 3875-3881(2012).
[25] S SARKAR, D BASAK. Defect controlled ultra high ultraviolet photocurrent gain in Cu-doped ZnOnanorod arrays: De-trapping yield. Applied Physics Letters, 103, 041112(2013).
[26] Y H LIU, S J YOUNG, C H HSIAO et al. Visible-blind photodetectors with Mg-doped ZnO nanorods. IEEE Photonics Technology Letters, 26, 645-648(2014).
[27] S J CHANG, B G DUAN, C H HSIAO et al. Low-frequency noise characteristics of In-doped ZnO ultraviolet photodetectors. IEEE Photonics Technology Letters, 25, 2043-2046(2013).
Get Citation
Copy Citation Text
Zhaolin YUAN, Qingpeng XU, Zhiwen XIE, Jianfeng HE, Shengyu YOU, Xueyuan WANG. Characteristics of Al-doped ZnO Nanowire Arrays Ultraviolet Photodetectors[J]. Acta Photonica Sinica, 2024, 53(7): 0753311
Category: Special Issue for Photodetectors
Received: Mar. 21, 2024
Accepted: May. 6, 2024
Published Online: Aug. 12, 2024
The Author Email: YUAN Zhaolin (yzlyx98@sina.com)