Metal ion-doped organic-inorganic hybrid metal halides have emerged as promising room-temperature phosphorescence (RTP) materials owing to their tunable afterglow properties and significant potential in information security applications. However, optimizing RTP performance and achieving dynamic control over afterglow colors remain challenging in 1D hybrid systems, primarily because of the inefficient energy transfer from RTP-active organic components to external emissive sites. Herein, we report a novel 1D hybrid metal halide benchmark material, [(NBP)CdClHO] (NBP-Cd, NBP = -benzylpiperidone), and a series of Mn-doped derivatives, NBP-Cd:Mn (where represents doping levels from 1% to 50%). The undoped compound exhibits blue-white fluorescence and exceptional long-lasting yellow-green organic RTP with a duration of up to 2 s. Upon Mn doping, the afterglow color transitions progressively from yellow-green (1-5%) to yellow (10%), orange (20%), and finally red (50%), accompanied by a reduction in afterglow duration. This dynamic multicolor afterglow behavior is attributed to efficient energy transfer from the stable triplet states within the organic component to the T level of the Mn dopants. Remarkably, the NBP-Cd:10% Mn crystal demonstrates exceptional excitation-dependent dual-mode photoluminescence properties. These distinctive features underscore the significant potential of this model system for advanced applications in anti-counterfeiting technologies and high-level information encryption systems.
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http://dx.doi.org/10.1039/d4sc08718f | DOI Listing |
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March 2025
Department of Applied Chemistry, Petroleum and Chemical Industry Key Laboratory of Organic Electrochemical Synthesis, State Key Laboratory of Green Chemistry Synthesis Technology, Zhejiang University of Technology, Hangzhou, 310014, P. R. China.
Electrocatalytic hydrogenation (ECH) of quinoline provides an eco-friendly and prospective route to achieve the highly value-added generation of 1,2,3,4-tetrahydroquinoline (THQ). Co element has been proven to be the efficient catalytic site for ECH of quinoline, but the rational regulation of the electronic structure of active Co site to improve the activity is still a challenge. Herein, the hierarchical core-shell structure consisting of NiCo-MOF nanosheets encapsulated Cu(OH) nanorods (Cu(OH)@CoNi-MOF) is constructed.
View Article and Find Full Text PDFSmall
March 2025
College of Materials Science and Engineering, Fuzhou University, Fuzhou, 350108, China.
The sluggish reaction kinetics and formidable shuttle effect of soluble lithium polysulfides (LiPSs) are thorny problems for the future industrialization of lithium-sulfur (Li-S) batteries. Therefore, exploring efficient electrocatalysts to capture LiPSs and accelerate their conversion is highly desirable yet tremendously challenging. Herein, a high-efficiency Bi/BiO/VMoN@rGO electrocatalyst with multifunctional active sites and multilevel heterointerfaces is elaborately designed for Li-S batteries.
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March 2025
College of Materials Science and Engineering, Fuzhou University, New Campus, Minhou, Fujian, 350108, China.
Overcoming the challenges of integrating disparate components in nanoarchitectures, this study introduces a straightforward strategy based on a mixed-valence coordination approach, creating an ordered ternary heterostructure integrated with ultrasmall homojunction. This singular ordered homojunction-heterostructure unites ultrathin 1D rutile TiO nanowires (NWs) and ultrathin anatase TiO NWs with 0D Prussian Blue Analogs (PBAs) nanoparticles (NPs), all exhibiting crystallographic oriented alignment with each other, forming a ternary mesocrystals. Experimental and theoretical insights disclose that the complex interplay between these dissimilar components is governed by a spontaneous lattice match effect, which not only optimizes but also directs the charge transfer, thereby enhancing both efficiency and stability.
View Article and Find Full Text PDFAngew Chem Int Ed Engl
March 2025
Central South University, School of Metallurgy and Enviroment, No. 932, Lushan Road,, Changsha city, Hunan Province, 410083, Changsha, CHINA.
Activated by the Li-O-Li configuration with nonbonding O2p state (lO2p), anionic redox reaction (ARR) in Li-rich layered oxides (LLOs) contributes to additional capacity but exhibits significant irreversibility, leading to severe surface oxygen loss. Herein, surface nonbonding oxygen state (SNBOS) is regulated by the integrated surface structure engineering to suppress surface oxygen loss and enhance the reversibility of ARR. On the outermost layer, the conversion of layered structure into a LiLaO2 layer and spinel phase structure eliminates lO2p, thereby preventing the activation of ARR and suppressing side reaction between electrolyte and oxidized oxygen ions.
View Article and Find Full Text PDFInorg Chem
March 2025
College of Chemistry, Chemical Engineering and Materials Science, Soochow University, Suzhou 215123, PR China.
Integrating mixed electron donor (D) and electron acceptor (A) ligands into metal-organic frameworks (MOFs) is an effective yet relatively unexplored approach for improving the anode performance of hybrid lithium-ion capacitors (HLICs). In this study, using an electron donor 2,6-bis(4'-pyridyl)tetrathiafulvalene and an electron acceptor ,'-bis(5-isophthalic acid) naphthalene diimide as ligands, a new Zn-TTF/NDI MOF () is constructed as a pseudocapacitive anode of HLICs. Crystallographic characterization revealed that MOF adopts a two-dimensional (2D) coordination network.
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