Results 181 to 190 of about 906,005 (283)
Growth mechanism and formaldehyde sensing of mixed phase cobalt oxide nanowalls. [PDF]
Barala S +3 more
europepmc +1 more source
High‐Performance Zero‐Gap Glycerol‐Fed Electrolyzer for C3 Chemicals and Hydrogen Production
This work presents a dynamic, self‐regulating operation strategy that enables selective glycerol electrooxidation in the OER‐free regime, co‐producing C3 chemicals and hydrogen at cell voltages below 1.25 V. Voltage‐ and temperature‐resolved analyses define optimal operating conditions, achieving a sustained current density of 500 mA cm−2 at ∼1.21 V ...
Shayan Angizi +11 more
wiley +1 more source
Aldehyde Electrophilicity and Ring Strain Govern Xylose Acetalization Pathways for Biobased Chemical Production. [PDF]
Li ZJ +6 more
europepmc +1 more source
A survey of formaldehyde in the Cepheus OB3 molecular cloud [PDF]
R. W. Few, R. J. Cohen
openalex +1 more source
Advanced Porous Materials for Maritime Carbon Capture
Carbon capture from emission sources, such as marine vessels, has attracted significant attention over the years. To achieve this goal, sorbents such as metal–organic frameworks (MOFs), porous polymer networks (PPNs), covalent organic frameworks (COFs), and their post‐synthetic modifications are currently being explored.
Kelechi Festus +6 more
wiley +1 more source
Hydrogen Atomic Motions in Different Intramolecular Environments: H<sub>2</sub>O, H<sub>2</sub>S, and Formaldehyde (H<sub>2</sub>CO). [PDF]
Jones DB +3 more
europepmc +1 more source
Mechanism of Formaldehyde Formation in Lentinus edodes
Kimikazu Iwami +2 more
openalex +2 more sources
Hybrid piezoelectric scaffolds offer a promising route for Central Nervous System regeneration by combining structural and electrical cues to support neural stem cell growth. This review highlights their potential to overcome current challenges in neural tissue engineering by exploring porous hybrid materials, their biological interactions, and ...
Heather F. Titterton +2 more
wiley +1 more source

