The University of Tokyo · 재료과학
Takaya Kubo 교수의 연구실은 주로 전자 및 광전기 소재를 활용한 친환경 태양전지 기술 개발에 초점을 맞추고 있습니다. 특히 ZnO 나노와이어와 페로브스카이트 또는 쿠버트 양자점(예: PbS, AgBiS₂)을 조합한 인터디지티드 구조를 통해 높은 효율과 안정성을 확보하는 데 주력하고 있으며, 나노소재의 표면 및 결함 특성 제어를 통한 성능 향상 전략도 개발하고 있습니다. 이는 다층 태양전지의 밑층 소자로 응용 가능한 솔루션 프로세싱 기반의 태양전지 설계를 목표로 합니다.
표시된 성과는 수집된 데이터 기준으로 산출되며, 일부 차이가 있을 수 있습니다.
Optical gaps and electrochromic efficiencies of sputtered tungsten oxide films are studied by focusing attention on the cluster size of the film. The cluster consists of O‐W‐O network with terminal W=O bonds on its boundary. The quantity of W=O bonds increased with the surface area of the clusters. Raman scattering bands of the O‐W‐O and W=O are observed between 500 and 1100 cm−1. These characteristic Raman scattering bands of the film are well reproduced by the combination of four Gaussian shap
AgBiS<sub>2</sub> nanocrystals (NCs) are nontoxic, lead-free, and near-infrared absorbing materials. Eco-friendly solar cells were constructed using interdigitated layers of ZnO nanowires (NWs) and AgBiS<sub>2</sub> NCs, with the aim of elongating the otherwise short carrier diffusion length of the AgBiS<sub>2</sub> NC assembly. AgBiS<sub>2</sub> NCs were uniformly infiltrated into the ZnO NW layers using a low-cost and easily scalable dip coating method. The resulting ZnO NW/AgBiS<sub>2</sub> N
We have constructed heterojunction iodide ligand PbS quantum dot (QD) and ZnO nanowire (NW) solar cells. In these interdigitated structures, PbS QDs are well-embedded within ZnO NWs grown on a dense ZnO layer. A Au back contact is directly formed on the iodide ligand PbS QD surface layer. In the widely studied colloidal QD-based heterojunction solar cells, the PbS QD active layer is sandwiched between the hole-blocking layer (or electron-accepting layer) and the electron-blocking layer (EBL) (or
PbS colloidal quantum dot (CQD)‐based depleted bulk‐heterojunction solar cells were constructed, using the 1.2 μm thick nanowire array infiltrated with PbS QDs bearing Br ligands. The long‐term stability tests were performed on the solar cells without encapsulation in air under continuous light soaking using a Xe lamp with an AM1.5G filter (100 mW cm −2 ). Time course of solar cell performances during the tests showed two time periods with distinct behavior, that is, the initial transient time p
Eco-friendly solar cells were fabricated using interdigitated layers comprising ZnO nanowires (NWs) and infrared absorbing AgBiS<sub>2</sub> nanocrystals (ITO/ZnO NWs/AgBiS<sub>2</sub>/P3HT/Au). The quality of ZnO NWs was studied using photoluminescence and Raman spectroscopy to identify the defects in ZnO NWs influencing solar cell performance. Oxygen vacancies and Zn interstitial sites, among various recombination sites, were observed to be the main sites for carrier recombination, which hinde
We constructed an infrared PbS colloidal quantum dot (QD)/ZnO nanowire (NW) solar cell to develop a solution-processed bottom solar cell for multijunction solar cells. PbS QD/ZnO NW interdigitated structures comprising 1 μm long ZnO NWs enable the construction of spatially separated carrier pathways and thick PbS QD layers for high infrared light harvesting. Additionally, optical management plays an essential role in the harvesting process. Using infrared transparent conductive oxides as window