Publications by authors named "Chuyen Van Pham"

Article Synopsis
  • Anion exchange membrane water electrolysis (AEMWE) is a promising method for producing green hydrogen, as it can use cheaper, non-noble catalysts, but replacing expensive platinum (Pt) catalysts remains a challenge.
  • The study presents a new synthesis method for a ruthenium (Ru)-based catalyst that is much more efficient than existing Pt/C catalysts in alkaline conditions, demonstrating its effectiveness through various tests.
  • The two-step synthesis involves creating a nickel catalyst on carbon first, then depositing Ru evenly across its surface, resulting in lower voltage requirements (1.73 V at 1 A cm) and minimal precious metal usage (0.05 mg cm).
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The widespread application of green hydrogen production technologies requires cost reduction of crucial elements. To achieve this, a viable pathway to reduce the iridium loading in proton exchange membrane water electrolysis (PEMWE) is explored. Herein, a scalable synthesis method based on a photodeposition process for a TiO@IrO core-shell catalyst with a reduced iridium content as low as 40 wt.

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Molybdenum disulfide (MoS) is widely regarded as a competitive hydrogen evolution reaction (HER) catalyst to replace platinum in proton exchange membrane water electrolysers (PEMWEs). Despite the extensive knowledge of its HER activity, stability insights under HER operation are scarce. This is paramount to ensure long-term operation of Pt-free PEMWEs, and gain full understanding on the electrocatalytically-induced processes responsible for HER active site generation.

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We present a significant efficiency enhancement of hybrid bulk heterojunction solar cells by utilizing CdSe quantum dots attached to reduced graphene oxide (rGO) as the electron accepting phase, blended with the PCPDTBT polymer. The quantum dot attachment to rGO was achieved following a self-assembly approach, recently developed, using thiolated reduced graphene oxide (TrGO) to form a TrGO-CdSe nanocomposite. Therefore, we are able to obtain TrGO-CdSe quantum dot/PCPDTBT bulk-heterojunction hybrid solar cells with power conversion efficiencies of up to 4.

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