Biroju Ravi K, Paltasingh Sanat Nalini, Sahoo Mihir Ranjan, Dhara Soumen, Maity Dipak, Vretenár Viliam, Giri P K, Narayanan Tharangattu N, Nayak Saroj Kumar
Centre for Nanodiagnostics of Materials, Faculty of Materials Science and Technology, Slovak University of Technology, Vazovova 5, 812 43 Bratislava, Slovakia.
School of Advanced Sciences-Division of Physics, Vellore Institute of Technology, Chennai 600048, Tamil Nadu, India.
ACS Appl Electron Mater. 2025 May 19;7(11):4888-4897. doi: 10.1021/acsaelm.5c00348. eCollection 2025 Jun 10.
Graphene-based ZnO thin-film hybrids (GR-ZnO) have shown interesting properties for electronic and optoelectronic applications, such as enhanced UV photodetection and photocatalysis. The interaction and explicit role of large-area single-layer chemical vapor deposition (CVD)-grown graphene in the improved photophysical properties in such a kind of GR-ZnO hybrids have not been well-understood in recent reports. In the present work, we fabricated a photosensor made with large-area monolayer CVD GR-ZnO thin-film hybrids, which showed improved UV photodetection with high values of UV sensitivity and responsivity compared to bare ZnO films. The GR-ZnO thin-film hybrid photosensors demonstrated about a 20 time improvement in photoresponsivity (9.87 × 10 A/W) compared to the bare ZnO thin film (4.93 × 10 A/W). We investigated the origin of the high photosensitivity of GR-ZnO, and it is explained based on a comparatively large absorption coefficient, enhancement of the number of photogenerated carriers, and a reduction of the recombination rates of these carriers based on density functional theory (DFT) calculations. The high mobility of the graphene layer provides an efficient and faster charge transfer pathway for photogenerated carriers at the interface between ZnO and the graphene layers.
基于石墨烯的氧化锌薄膜复合材料(GR-ZnO)在电子和光电子应用方面展现出了有趣的特性,如增强的紫外光探测和光催化性能。在近期的报道中,大面积单层化学气相沉积(CVD)生长的石墨烯在这类GR-ZnO复合材料中对光物理性能改善所起的相互作用及明确作用尚未得到充分理解。在本工作中,我们制备了一种由大面积单层CVD GR-ZnO薄膜复合材料制成的光电探测器,与裸氧化锌薄膜相比,该探测器在紫外光探测方面表现出更高的紫外灵敏度和响应度。GR-ZnO薄膜复合材料光电探测器的光响应度(9.87×10 A/W)相较于裸氧化锌薄膜(4.93×10 A/W)提高了约20倍。我们研究了GR-ZnO高光敏性的起源,并基于密度泛函理论(DFT)计算,从相对较大的吸收系数、光生载流子数量的增加以及这些载流子复合率的降低等方面进行了解释。石墨烯层的高迁移率为光生载流子在氧化锌与石墨烯层界面处提供了一条高效且快速的电荷转移途径。