High-performance light-driven heterogeneous CO2 catalysis with near-unity selectivity on metal phosphides.
Yang-Fan XuPaul N DuchesneLu WangAlexandra TavasoliAbdinoor A JelleMeikun XiaJin-Feng LiaoDai-Bin KuangGeoffrey A OzinPublished in: Nature communications (2020)
Akin to single-site homogeneous catalysis, a long sought-after goal is to achieve reaction site precision in heterogeneous catalysis for chemical control over patterns of activity, selectivity and stability. Herein, we report on metal phosphides as a class of material capable of realizing these attributes and unlock their potential in solar-driven CO2 hydrogenation. Selected as an archetype, Ni12P5 affords a structure based upon highly dispersed nickel nanoclusters integrated into a phosphorus lattice that harvest light intensely across the entire solar spectral range. Motivated by its panchromatic absorption and unique linearly bonded nickel-carbonyl-dominated reaction route, Ni12P5 is found to be a photothermal catalyst for the reverse water gas shift reaction, offering a CO production rate of 960 ± 12 mmol gcat-1 h-1, near 100% selectivity and long-term stability. Successful extension of this idea to Co2P analogs implies that metal phosphide materials are poised as a universal platform for high-rate and highly selective photothermal CO2 catalysis.
Keyphrases
- visible light
- metal organic framework
- photodynamic therapy
- reduced graphene oxide
- room temperature
- drug delivery
- optical coherence tomography
- high throughput
- magnetic resonance imaging
- sensitive detection
- ionic liquid
- computed tomography
- magnetic resonance
- quantum dots
- molecular dynamics simulations
- transition metal