Monolithic Photoelectrochemical Device for 19% Direct Water Splitting
arXiv:1706.01493 · doi:10.1021/acsenergylett.8b00920
Abstract
Recent rapid progress in efficiencies for solar water splitting by photoelectrochemical devices has enhanced its prospects to enable storable renewable energy. Efficient solar fuel generators all use tandem photoelectrode structures, and advanced integrated devices incorporate corrosion protection layers as well as heterogeneous catalysts. Realization of near thermodynamic limiting performance requires tailoring the energy band structure of the photoelectrode and also the optical and electronic properties of the surface layers exposed to the electrolyte. Here, we report a monolithic device architecture that exhibits reduced surface reflectivity in conjunction with metallic Rh nanoparticle catalyst layers that minimize parasitic light absorption. Additionally, the anatase TiO2 protection layer on the photocathode creates a favorable internal band alignment for hydrogen evolution. An initial solar-to-hydrogen efficiency of 19.3 % is obtained in acidic electrolyte and an efficiency of 18.5 % is achieved at neutral pH condition (under simulated sunlight).
35 pages, 3 figures, 12 supplementary figures, 1 supplementary table
References in corpus (1)
Cited by in corpus (9)
- Current density in solar fuel technologies
- Photovoltaics-driven power production can support human exploration on Mars
- The Interfacial Structure of InP(100) in Contact with HCl and HSO studied by Reflection Anisotropy Spectroscopy
- Towards Understanding of Gold Interaction with AIII-BV Semiconductors at Atomic Level
- Counterbalancing light absorption and ionic transport losses in the electrolyte for integrated solar water splitting with III-V/Si dual-junctions
- Designing Mixed-Metal Electrocatalyst Systems for Photoelectrochemical Dinitrogen Activation
- contact to absorber for photovoltaic and photoelectrochemical devices
- A highly integrated, stand-alone photoelectrochemical device for large-scale solar hydrogen production
- Assessment of GaPSb/Si tandem material association properties for photoelectrochemical cells