This study demonstrates Ti and Pt co-doping can synergistically improve the PEC performance of the α-FeO photoanode. By varying the doping methods, the sample with in-situ Ti ex-situ Pt doping (Ti-Pt) exhibits the best performance. It demonstrates that Ti doping in bulk facilities charge separation and Pt doping on the surface further accelerates charge transfer. In contrast, Ti doping on the surface inhibits charge separation, and Pt doping in bulk hinders charge separation and transfer. HCl treatment is used to minimize the onset potential further, while it is favorable for the ex-situ doped α-FeO, which is more efficient on Ti than the Pt-doped ones. On the ex-situ Ti-doped α-FeO after HCl treatment, anatase TiO is probed, suggesting that Ti-O bonds accumulate when Fe-O bonds are partly removed, which enhances the charge transfer in surface states. Unfortunately, HCl treatment also induces lattice defects that are adverse to charge transport, inhibiting the performance of in-situ doped α-FeO and excessively treated ex-situ doped ones. Coupled with methanol solvothermal treatment and NiOOH/FeOOH cocatalysts loading, the optimized Ti-Pt/FeO photoanode exhibits an impressive photocurrent density of 2.81 mA cm at 1.23 V vs. RHE and a low onset potential of 0.60 V vs. RHE.
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http://dx.doi.org/10.1016/j.jcis.2023.03.042 | DOI Listing |
ACS Appl Mater Interfaces
March 2025
School of Chemistry and Environment, Changchun University of Science and Technology, Changchun 130022, China.
Doping guest materials into host materials with a confined space to suppress nonradiative decay is an effective strategy for achieving room-temperature phosphorescence (RTP). However, constructing host-guest doped materials with ultralong RTP (URTP) is still challenging. Herein, by embedding three coumarin derivatives into boric acid via one-step heat treatment, the URTP material with an afterglow lasting up to 60 s, a phosphorescence lifetime of 1.
View Article and Find Full Text PDFSci Adv
March 2025
Department of Chemistry, Hanyang University, Seoul 04763, Republic of Korea.
Polymer blend films exhibit unique properties and have applications in various fields. However, understanding their nanoscale structures and polymer component distributions remains a challenge. To address this limitation, we have developed a super-resolution fluorescence microscopy-based technique called oxygen-excluded nanoimaging.
View Article and Find Full Text PDFJ Nephrol
March 2025
Nephrology Dialysis and Kidney Transplant Unit, Azienda Ospedaliero Universitaria di Modena, Via del pozzo 71, 41122, Modena, Italy.
The adsorption technique has opened a new frontier in the field of purification through hemodialysis. This technique has proved to be effective in removing uremic toxins previously deemed inaccessible due to their size or charge, as well as to their molecular interactions with blood proteins. In this context, this review provides a detailed explanation of the role of Polyester-polymer alloy (PEPA®) membranes and hemodiafiltration with endogenous reinfusion.
View Article and Find Full Text PDFACS Nano
March 2025
State Key Laboratory of Applied Organic Chemistry, Key Laboratory of Nonferrous Metal Chemistry and Resources Utilization of Gansu Province, College of Chemistry and Chemical Engineering, Lanzhou University, Lanzhou 730000, P. R. China.
In this study, we construct a quantum well effect-based two-dimensional Z-scheme superlattice heteronanostructure photocatalyst constructed from hydrogen-bonded porphyrin organic frameworks (HOFs) and carbon nitride. Porphyrin HOFs extend spectral absorption, while their π-conjugation and electron density variations significantly enhance charge separation and exhibit favorable alignment with the energy levels of carbon nitride, thereby enabling efficient charge transfer. Carboxylic acid channels in the HOFs further promote the decomposition of water molecules, thereby boosting hydrogen production.
View Article and Find Full Text PDFAdv Mater
March 2025
School of Chemical Engineering, Nanjing University of Science and Technology, Nanjing, 210094, P. R. China.
Bioelectrodes function as a critical interface for signal transduction between living organisms and electronics. Conducting polymers (CPs), particularly poly(3,4-ethylenedioxythiophene):poly(styrenesulfonate), are among the most promising materials for bioelectrodes, due to their electrical performance, high compactness, and ease of processing, but often suffer from degradation or de-doping even in some common environments (e.g.
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