Published June 17, 2025 | Version v1
Dataset Open

Dataset for: Active sites under electronic effect are more sensitive to micro-environment in CO2 electroreduction

  • 1. ROR icon École Polytechnique Fédérale de Lausanne
  • 1. ROR icon École Polytechnique Fédérale de Lausanne

Description

Tailoring the structure of the active sites and engineering the micro-environment to tune catalytic performance are both at the forefront of catalysis. Yet, design principles bridging the two remain missing. Here, we synthesize a platform consisting of well-defined cubic Cu nanocrystals with an oxide coating of tunable porosity, here alumina. We indicate that varying the porosity modulates the relative weight of the native geometric effect and the introduced interfacial electronic effect. We link the change in porosity to the catalytic behavior in the electrochemical CO2 reduction reaction. In particular, we use the shift in selectivity as a key descriptor to show that the electronic effect overrules the geometric effect with increasing porosity. We find that a balance between geometric and electronic effects optimizes the intrinsic catalytic reactivity. Importantly, we use this platform to propose that active sites under electronic effect are more sensitive to the change in micro-environment, here exemplified by alkali cations in the electrolyte. The fundamental insights gathered through the proposed catalytic platform stimulate future discussion on linking the nature of the active sites and the micro-environment engineering.

Files

README.txt

Files (19.7 kB)

Name Size Download all
md5:e9c277849006931d1e29e8479126b44f
394 Bytes Preview Download
md5:7943b40793a46cabe8f22683b87f0bc0
13.5 kB Preview Download
md5:ada141de342bb7772686c203a0d9bf99
849 Bytes Preview Download
md5:654a4773e6c86febaca6bbc833520df2
588 Bytes Preview Download
md5:0942dd7e6826a90d57d6f002324a5532
418 Bytes Preview Download
md5:d85d94b2d0a9cacdbc751ebb6a03c9b6
699 Bytes Preview Download
md5:c9be8b6579fd86e417e71cd028127a5f
352 Bytes Preview Download
md5:d7cf5daf3178102ee112a714a7c769e6
376 Bytes Preview Download
md5:5cc4d05aad65584e1af304ea04c724d1
201 Bytes Preview Download
md5:0e5e65c902aadd3be145ee87316a385a
281 Bytes Preview Download
md5:0ce542075aba774de273f96698b72c3c
170 Bytes Preview Download
md5:14c0d94db6616ad020d8bfcf7152fe57
221 Bytes Preview Download
md5:7949150839fdcd1749587cfecc11fb37
1.6 kB Preview Download

Additional details

Related works

Is supplement to
Journal article: 10.1021/jacs.5c05697 (DOI)

Funding

Swiss National Science Foundation
NCCR Catalysis (phase I) 180544
Swiss National Science Foundation
NCCR Catalysis (phase II) 225147