甘油
电
选择性
能量转换
燃料电池
能量转换效率
材料科学
功率密度
光催化
密度泛函理论
化学工程
催化作用
发电
电池电压
电流密度
太阳能
电压
微生物燃料电池
废物管理
工艺工程
能量密度
功率(物理)
高效能源利用
兴奋剂
电流(流体)
化学
可见光谱
纳米技术
化学能
制浆造纸工业
太阳能转换
环境科学
格子(音乐)
能源
清洁能源
作者
Wenyi Chen,W Y Wang,Yulei Ren,Yi Shi,M H Wang
标识
DOI:10.1021/acs.jpclett.6c00254
摘要
Regarded as a promising next-generation energy conversion system, photocatalytic fuel cells (PFCs) can efficiently utilize solar energy for fuel conversion with simultaneous electricity generation. However, prevailing PFC designs predominantly prioritize complete fuel mineralization, overlooking the selective valorization into value-added chemicals. Herein, we reported a rationally designed PFC system based on a Cu-doped WO 3 photoanode for concurrent glycerol upgrading and power generation. The optimized photoanode achieved a glycerol conversion of 5.48 mmol L –1 h –1 while delivering an open-circuit voltage of 0.50 V and a short-circuit current density of 5.5 mA cm –2 . Mechanistic studies and density functional theory calculations revealed that Cu was doped into the WO 3 lattice in a substitutional form, which modulated the electronic structure and selectivity to value-added products. Designed PFC achieved a maximum power output of 0.8 mW cm –2 while maintaining a selectivity of over 75% toward valuable C3 and C2 products.
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