材料科学
硅
兴奋剂
光电子学
非晶硅
太阳能电池
单晶硅
光伏
晶体硅
纳米技术
图层(电子)
能量转换效率
聚合物太阳能电池
光伏系统
生态学
生物
作者
Thomas Tom,Eloi Ros,David Rovira,J. López-Vidrier,J.M. Asensi,Pablo Ortega,Joaquim Puigdollers,C. Voz,J. Bertomeu
标识
DOI:10.1002/admt.202200936
摘要
Abstract Development of carrier selective contacts for crystalline silicon solar cells has been recently of great interest toward the further expansion of silicon photovoltaics. The use of new electron and hole selective layers has opened an array of possibilities due to the low‐cost processing and non‐doping contacts. Here, a non‐doped heterojunction silicon solar cell without the use of any intrinsic amorphous silicon is fabricated using Deoxyribonucleic acid (DNA) as the electron transport layer (ETL) and transition metal oxide V 2 O 5 as the hole transport layer (HTL). The deposition and characterization of the DNA films on crystalline silicon have been studied, the films have shown a n ‐type behavior with a work function of 3.42 eV and a contact resistance of 28 mΩ cm 2 . This non‐doped architecture has demonstrated a power conversion efficiency of 15.6%, which supposes an increase of more than 9% with respect to the cell not containing the biomolecule, thus paving the way for a future role of nucleic acids as ETLs.
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