Publications by authors named "Nan C"

Film capacitors are widely used in advanced electrical and electronic systems. The temperature stability of polymer dielectrics plays a critical role in supporting their performance operation at elevated temperatures. For the last decade, the investigations for new polymer dielectrics with high energy storage performance at higher temperatures (>200 °C) have attracted much attention and numerous strategies have been employed.

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The side reactions accompanying the charging and discharging process, as well as the difficulty in decomposing the discharge product lithium peroxide, have been important issues in the research field of lithium-oxygen batteries for a long time. Here, single atom Ta supported by CoO hollow sphere was designed and synthesized as a cathode catalyst. The single atom Ta forms an electron transport channel through the Ta-O-Co structure to stabilize octahedral Co sites, forming strong adsorption with reaction intermediates and ultimately forming a film-like lithium peroxide that is highly dispersed.

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Ceramic capacitors with ultrahigh power density are crucial in modern electrical applications, especially under high-temperature conditions. However, the relatively low energy density limits their application scope and hinders device miniaturization and integration. In this work, we present a high-entropy BaTiO-based relaxor ceramic with outstanding energy storage properties, achieving a substantial recoverable energy density of 10.

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Next-generation advanced high/pulsed power capacitors rely heavily on dielectric ceramics with high energy storage performance. Although high entropy relaxor ferroelectric exhibited enormous potential in functional materials, the chemical short-range order, which is a common phenomenon in high entropy alloys to modulate performances, have been paid less attention here. We design a chemical short-range order strategy to modulate polarization response under external electric field and achieve substantial enhancements of energy storage properties, i.

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Polymer dielectric materials are widely used in electrical and electronic systems, and there have been increasing demands on their dielectric properties at high temperatures. Incorporating inorganic nanoparticles into polymers is an effective approach to improving their dielectric properties. However, the agglomeration of inorganic nanoparticles and the destabilization of the organic-inorganic interface at high temperatures have limited the development of nanocomposites toward large-scale industrial production.

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Skyrmion bags, with arbitrary topological charge Q, have recently attracted much interest, since such high-Q topological systems could open a way for topological magnetism research and are promising for spintronic applications with high flexibility for information encoding. Investigation on room-temperature skyrmion bags in magnetic multilayered structures is essential for applications and remains unexplored so far. Here, we demonstrate room-temperature creation and manipulation of individual skyrmion bags in magnetic multilayered disks.

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Sepsis, caused by infections, sparks a dangerous bodily response. The transcriptional expression patterns of host responses aid in the diagnosis of sepsis, but the challenge lies in their limited generalization capabilities. To facilitate sepsis diagnosis, we present an updated version of single-cell Pair-wise Analysis of Gene Expression (scPAGE) using transfer learning method, scPAGE2, dedicated to data fusion between single-cell and bulk transcriptome.

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The safety and cycle stability of lithium metal batteries (LMBs) under conditions of high cut-off voltage and fast charging put forward higher requirements for electrolytes. Here, a sulfonate-based deep eutectic electrolyte (DEE) resulting from the eutectic effect between solid sultone and lithium bis(trifluoromethanesulfonyl)imide without any other additives is reported. The intermolecular coordination effect triggers this eutectic phenomenon, as evidenced with nuclear magnetic resonance, and thus the electrochemical behavior of the DEE can be controlled by jointly regulating the coordination effects of F···H and Li···O intermolecular interactions.

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Clostridium butyricum SCUT 620, a promising biorefinery chassis, has been demonstrated to efficiently utilize monosaccharides, disaccharides, and polysaccharides for butyric acid production. However, the absence of genetic manipulation tools has restricted its further development and application. For the first time, an efficient electroporation method for C.

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Introduction: The association between elevated lactate levels and the development of disseminated intravascular coagulation (DIC) in patients with severe trauma remains unclear. Hence, this study aimed to explore the association between lactate and the development of DIC in patients with severe trauma.

Methods: This prospective cohort study was conducted on consecutive patients with severe trauma who were hospitalized in the intensive care unit from January 2020 to January 2023.

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Symmetry engineering is explicitly effective to manipulate and even create phases and orderings in strongly correlated materials. Flexural stress is universally practical to break the space-inversion or time-reversal symmetry. Here, by introducing strain gradient in a centrosymmetric antiferromagnet Sr_{2}IrO_{4}, the space-inversion symmetry is broken accompanying a nonequivalent O p-Ir d orbital hybridization along the z axis.

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Background: Intracerebral hemorrhage (ICH) is a severe form of stroke characterized by high incidence and mortality rates. Currently, there is a significant lack of effective treatments aimed at improving clinical outcomes. Our research team has developed a three-dimensional (3D) biological scaffold that incorporates Bergenin, allowing for the sustained release of the compound.

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HfO-based ferroelectric materials are emerging as key components for next-generation nanoscale devices, owing to their exceptional nanoscale properties and compatibility with established silicon-based electronics infrastructure. Despite the considerable attention garnered by the ferroelectric orthorhombic phase, the polar rhombohedral phase has remained relatively unexplored due to the inherent challenges in its stabilization. In this study, the successful synthesis of a distinct ferroelectric rhombohedral phase is reported, i.

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Article Synopsis
  • The study investigates the biomechanical advantages of the Femoral Neck System (FNS) compared to Cannulated cancellous screws (CSS) for treating osteoporotic femoral neck fractures due to inconclusive findings in existing literature.
  • Finite element analysis was used to model different fixation systems (CSS, FNS, and modified FNS) under static loads, revealing that all systems showed increased deformation and stress in osteoporotic conditions, with modified FNS performing the best.
  • The results indicated that while FNS alone may not offer immediate superiority, the modified FNS provides enhanced stability in osteoporotic patients, suggesting a need for further investigation into optimizing treatments for this demographic.
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Converting CO into high-value chemical fuels through green photoelectrocatalytic reaction path is considered as a potential strategy to solve energy and environmental problems. In this work, BiVO/ZIF-8 heterojunctions are prepared by in-situ synthesis of ZIF-8 nanocrystals with unique pore structure on the surface of BiVO. The experimental results show that the silkworm pupa-like BiVO is successfully combined with porous ZIF-8, and the introduction of ZIF-8 can provide more sites for CO capture.

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Thermoelectrics converting heat and electricity directly attract broad attentions. To enhance the thermoelectric figure of merit, zT, one of the key points is to decouple the carrier-phonon transport. Here, we propose an entropy engineering strategy to realize the carrier-phonon decoupling in the typical SrTiO-based perovskite thermoelectrics.

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  • Relaxor ferroelectrics are essential for pulse-power dielectric capacitors, but improving energy density often reduces energy efficiency in high fields.
  • This study introduces a new high-entropy ceramic made from a mix of ferroelectric cations, which creates a unique dipole structure that enhances energy density and efficiency.
  • The resulting materials achieved impressive recoverable energy densities (up to ~26.3 J/cm³) with high efficiency and stability for use in multilayer ceramic capacitors.
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  • The Jahn-Teller effect (JTE) influences the physical properties of transition-metal compounds, making it essential for material functionality.
  • A new strategy has been proposed that focuses on controlling JTE by analyzing the occupancy of electron orbitals and the symmetry of oxygen atoms in manganese oxides.
  • The effectiveness of this approach has been shown in creating different types of NaLiMnO oxides and holds potential for other transition-metal compounds, offering a way to design materials with specific desired properties.
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Manipulating optical chirality via electric fields has garnered considerable attention in the realm of both fundamental physics and practical applications. Chiral ferroelectrics, characterized by their inherent optical chirality and switchable spontaneous polarization, are emerging as a promising platform for electronic-photonic integrated circuits applications. Unlike organics with chiral carbon centers, integrating chirality into technologically mature inorganic ferroelectrics has posed a long-standing challenge.

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  • Polymeric dielectric materials are promising for energy storage in capacitors, but their thermal resistance issues at high temperatures limit their use in tough environments.
  • This study introduces a flexible laminated polymer nanocomposite with nanoscale-confined polyetherimide (PEI) between solid AlO layers, which improves its thermal, mechanical, and electrical stability.
  • The nanolaminate achieves high energy density (18.9 J/cm) and efficiency (around 91%) at 200°C, with optimized performance due to increased glass-transition temperature and better electrical breakdown strength, enabling innovative applications like compact metal-wired capacitors.
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Article Synopsis
  • The study investigates how the Xianglian Huazhuo formula (XLHZ) may prevent chronic atrophic gastritis (CAG) from progressing to gastric cancer (GC) using bioinformatics and laboratory analyses.
  • Researchers used high-throughput sequencing to identify differentially expressed miRNAs and target genes, and applied various techniques to study XLHZ's effects on cell behavior in CAG cells.
  • The findings suggest that XLHZ enhances E-cadherin expression while reducing factors that promote cell migration and proliferation, thereby potentially blocking the progression from CAG to GC.
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Printing technology enables the integration of chemically exfoliated perovskite nanosheets into high-performance microcapacitors. Theoretically, the capacitance value can be further enhanced by designing and constructing multilayer structures without increasing the device size. Yet, issues such as interlayer penetration in multilayer heterojunctions constructed using inkjet printing technology further limit the realization of this potential.

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Hybrid halide perovskites are good candidates for a range of functional materials such as optical electronic and photovoltaic devices due to their tunable band gaps, long carrier diffusion lengths, and solution processability. However, the instability in moisture/air, the toxicity of lead, and rigorous reaction setup or complex postprocessing have long been the bottlenecks for practical application. Herein, we present a simultaneous configurational entropy design at A-sites, B-sites, and X-sites in the typical (CHA)PbBr two-dimensional (2D) hybrid perovskite.

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Flexible polymer-based dielectrics with high energy storage characteristics over a wide temperature range are crucial for advanced electrical and electronic systems. However, the intrinsic low dielectric constant and drastically degraded breakdown strength hinder the development of polymer-based dielectrics at elevated temperatures. Here, we propose a magnetic-assisted approach for fabricating a polyethyleneimine (PEI)-based nanocomposite with precisely aligned nanofibers within the polymer matrix, and with AlO deposition layers applied on the surface.

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Dielectric capacitors offer great potential for advanced electronics due to their high power densities, but their energy density still needs to be further improved. High-entropy strategy has emerged as an effective method for improving energy storage performance, however, discovering new high-entropy systems within a high-dimensional composition space is a daunting challenge for traditional trial-and-error experiments. Here, based on phase-field simulations and limited experimental data, we propose a generative learning approach to accelerate the discovery of high-entropy dielectrics in a practically infinite exploration space of over 10 combinations.

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