This paper converts bicarbonate capture solutions into formate and C2 products without separate CO2 recovery. This paper achieves high conversion efficiency and selectivity.
This paper uses high pressure to improve CO2 capture from dilute waste streams with simultaneous carbon capture. This paper achieves 81% formic acid efficiency.
This paper uses water recirculation in a solid electrolyte reactor to boost stability. This paper achieves 30 wt% H2O2 and a 1000-hour lifetime at high current densities.
This paper presents a one-step electrochemical method to regenerate CO2 and NaOH absorbent. This paper offers a modular, energy-efficient alternative to thermal calcination.
This paper introduces a sulfonated polymer buffer layer to recover CO2 lost to crossover. This paper demonstrates 90% carbon recovery with over 99% gas purity for reuse.
This paper outlines reactor engineering strategies to produce pure liquid fuels from CO2. This paper argues for direct generation to avoid costly downstream purification steps.
This paper reports a boron-doped carbon catalyst that overcomes the activity-selectivity dilemma. This paper delivers high H2O2 partial currents in a solid electrolyte reactor.
This paper uses an inert gas flow to carry out pure formic acid vapors from a solid electrolyte. This paper demonstrates condensation of pure solutions up to nearly 100 wt.%.
This paper details a direct route to produce high-purity H2O2 using a porous solid electrolyte. This paper tunes water flow rates to reach concentrations up to 20 weight %.