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Hybrid nanostructures have garnered considerable interest because of their fascinating properties owing to the hybridization of materials and their structural varieties. In this study, we report the synthesis of [Au@Rh(OH)]-Au island heterostructures using a seed-mediated sequential growth method. Through the thiol ligand-mediated interfacial energy, Au@Rh(OH) core-shell structures with varying shell thicknesses were successfully obtained. On these Au@Rh(OH) core-shell seeds, by modulating the diffusion of HAuCl in the porous Rh(OH) shell, site-specific growth of Au islands on the inner Au core or on the surface of the outer Rh(OH) shell was successfully achieved. Consequently, two types of distinct structures, the Au island-on-[Au@Rh(OH)] dimer and Au island-Au bridge-[Au@Rh(OH)] dumbbell structures with thin necks were obtained. Further modulations of the growth kinetics led to the formation of Au plate-Au bridge-[Au@Rh(OH)] heterostructures with larger structural anisotropy. The flexible structural variations were demonstrated to be an effective means of modulating the plasmonic properties; the Au-Au heterostructures exhibited tunable localized surface plasmon resonance in the visible-near-infrared spectral region and can be used as surface-enhanced Raman scattering (SERS) substrates capable of emitting strong SERS signals. This diffusion-controlled growth of Au bridges in the Rh(OH) shells (penetrating growth) is an interesting new approach for structural control, which enriches the tool box for colloidal nanosynthesis. This advancement in structural control is expected to create new approaches for colloidal synthesis of sophisticated nanomaterials, and eventually enable their extensive applications in various fields.
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http://dx.doi.org/10.3389/fchem.2023.1138932 | DOI Listing |
Food Chem
September 2025
Institute of Quality Standard and Testing Technology for Agro-products, Chinese Academy of Agricultural Sciences, Beijing 100081, China.
Fluoroquinolones are a popular class of antibiotics, which can lead to residues in food and the environment due to their abuse and illegal use. Consequently, this can pose a threat to human health. We hypothesized that a core-shell structured magnetic lanthanide metal-organic framework could serve as an effective dual-mode nanosensor, leveraging its antenna effect and peroxidase (POD)-like activity for the sensitive detection of fluoroquinolones.
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September 2025
Wuxi Haihe Equipment Scientific & Technological Co., Wuxi, China.
To study the impact of pH-responsive labels prepared using traditional and different printing methods on fruit freshness monitoring and preservation, this study firstly optimized coaxial 3D printed labels by analyzing core-shell ratios and infill ratios, and predicted the impact of printing design on functionality of labels via four models. Then, the physicochemical properties of cast, dual-nozzle 3D printed, and coaxial 3D printed labels were compared. Finally, lightweight deep convolutional neural network models were used to enhance early warning intelligence.
View Article and Find Full Text PDFPLoS One
September 2025
Department of Life and Environmental Sciences, Polytechnic University of Marche, Ancona, Italy.
Microfibers are pollutants of increasing concern, as they accumulate in aquatic environments and pose risks to living organisms. Once released, they undergo degradation processes that reduce their size and enhance their ability to interact with biological systems. Among these processes, photodegradation is a key driver, leading to fiber fragmentation and structural shrinkage.
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September 2025
School of Mechanical Engineering, Yonsei University, 50, Yonsei-ro, Seodaemun-gu, Seoul, 03722, Republic of Korea.
Core-shell electrodes provide a potential and innovative approach for significantly enhancing the performance and capacity of supercapacitors (SCs) by combining two distinct materials. The capabilities of these advanced electrodes surpass those of conventional single electrodes. Specifically, these exhibit better energy storage, higher power density, and improved overall performance.
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