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Photocatalytic fuel cells (PFCs) have proven to be effective for generating electricity and degrading pollutants with a goal to resolve environmental and energy problems. However, the degradation of persistent organic pollutants (POPs), such as perfluorooctanoic acid (PFOA), remains challenging. In the present work, a porous coral-like WO/W (PCW) photoelectrode with a well-designed energy band structure was used for the photoelectrocatalytic degradation of POPs and the simultaneous generation of electricity. The as-constructed bionic porous coral-like nanostructure greatly improved the light-harvesting capacity of the PCW photoelectrode. A maximum photocurrent density (0.31 mA/cm) under visible light (λ > 420 nm) irradiation and a high incident photon conversion efficiency (IPCE) value (5.72% at 420 nm) were achieved. Because of the unique porous coral-like structure, the suitable energy band position, and the strong oxidation ability, this PCW photoelectrode-based PFC system exhibited a strong ability for simultaneous photoelectrocatalytic degradation of PFOA and electricity generation under visible-light irradiation, with a power output of 0.0013 mV/cm using PFOA as the fuel. This work provides a promising way to construct a reliable PFC using highly toxic POPs to generate electricity.
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http://dx.doi.org/10.1021/acs.est.8b05685 | DOI Listing |
J Colloid Interface Sci
August 2025
Center for Molecular Science and Engineering, College of Science, Northeastern University, Shenyang 110819, PR China. Electronic address:
With mercury pollution causes serious threats to ecosystems and human health because of its extreme toxicity and bioaccumulation, the development of efficient removal technologies has become an urgent environmental priority. This study introduces a novel adsorbent thiazolo[5,4-d]thiazole conjugated microporous polymer (TzTzCMP) for efficient Hg(II) removal from wastewater. TzTzCMP synthesized via condensation of dithiocarbamate and triformyl-phenol, exhibits a coral-like porous structure with a high specific surface area of 436.
View Article and Find Full Text PDFACS Appl Mater Interfaces
August 2025
School of Physics, Beihang University, Beijing 100191, China.
Low-power and color-sensitive neuromorphic vision systems are critical to the next generation of intelligent devices. Here, we report a coral-inspired, lead-free synaptic device based on CsBiBr perovskite nanocrystals prepared by centrifugal casting into a porous thin film. The device exhibits wavelength-dependent plasticity under 405, 520, and 635 nm illumination without an external bias.
View Article and Find Full Text PDFJ Colloid Interface Sci
December 2025
School of Chemistry and Chemical Engineering, Key Laboratory of Surface & Interface Science of Polymer Materials of Zhejiang Province, Zhejiang Sci-Tech University, Hangzhou 310018, China. Electronic address:
This study synthesizes dual-modified graphitic carbon nitride (CN) through morphological engineering and Na doping, synergistically enhancing visible-light absorption and charge carrier dynamics. A coral-like Na-doped CN (NaCCN) was fabricated via one-step calcination method, leveraging the self-assembly of melamine and cyanuric acid in NaCl solution. This strategy simultaneously improved the electronic structure of the catalyst skeleton, increasing active sites and boosting electron transfer efficiency.
View Article and Find Full Text PDFSmall
September 2025
State Key Laboratory of Organic-Inorganic Composites, College of Materials Science and Engineering, Beijing University of Chemical Technology, Beijing, 100029, China.
Precision in early-stage ovarian cancer detection is crucial for improving survival rates, yet often involves invasive or resource-intensive procedures. It is here engineered a portable transdermal biosensor comprising antibody-functionalized hierarchical porous microneedles (hp-MNs) that enables on -needle quantitatively detect human epididymis protein 4 (HE4) and cancer antigen 125 (CA125) via fluorescence immunoassay. Fabricated through a novel phase separation micro-molding technique, the biomimetic microneedles feature a coral-like hierarchical inter-connective porous structure with noteworthy liquid absorption capacity and high antibody-binding density, enabling reliable in vivo biomarkers enrichment and detection with nanomolar sensitivity to differentiate disease from benign biofluids.
View Article and Find Full Text PDFJ Colloid Interface Sci
December 2025
Key Laboratory of Eco-chemical Engineering, International Science and Technology Cooperation Base of Eco-chemical Engineering and Green Manufacturing, College of Chemistry and Molecular Engineering, Qingdao University of Science and Technology, China. Electronic address:
Microporous polyethylene (PE) membranes are commonly used separators in lithium-sulfur (LiS) batteries. However, these membranes suffer from severe shrinkage at high temperatures and exhibit limited physical barrier capability against polysulfides, which leads to significant shuttle effects, resulting in capacity decay and safety hazards. In the present study, we report a facile strategy to construct a coral-like CaCO composite functional layer on the PE separator surface using a polydopamine (PDA)-assisted in situ liquid-phase growth technique.
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