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| 1 | Fabric-Based Triboelectric Nanogenerators显示文摘In the past decades,the progress of wearable and portable electronics is quite rapid,but the power supply has been a great challenge for their practical applications.Wearable power sources,especially wearable energy-harvesting devices,provide some possible solutions for this challenge.Among various wearable energy harvesters,the high-performance fabric-based triboelectric nanogenerators(TENGs)are particularly significant.In this review paper,we first introduce the fundamentals of TENGs and their four basic working modes.Then,we will discuss the material synthesis,device design,and fabrication of fabric-based TENGs.Finally,we try to give some problems that need to be solved for the further development of TENGs. | Jinmei Liu Long Gu Nuanyang Cui Qi Xu Yong Qin Rusen Yang | 2019 | Research2019,,1: | 1 |
| 2 | Synthesis of single crystalline niobate nanorods via ion-exchange based on molten-salt reaction显示文摘 | Chengyan Xu Liang Zhen Rusen Yang and Zhong Lin Wang | 2007 | Journal of American Ceramic Society2007,129,15: | 1 |
| 3 | Singlecrystal nanorings formed by epitaxial self-coiling of polar Nanobelts显示文摘 | Kong Xiangyang Ding Y ong Yang Rusen | 2004 | Science2004,303,5662: | 1 |
| 4 | Single- crystal nanorings formed by epitaxial sel{-coiling of polar nanobelts显示文摘 | Kong Xiangyang Ding Yong Yang Rusen | 2004 | Science2004,303,5662: | 1 |
| 5 | Constructing metal-free heterophotocatalyst using two-dimensional carbon nitride sheets and violet phosphorene for highly efficient visible-light photocatalysis显示文摘Two-dimensional(2D)carbon nitride sheets(CNs)with nanoscale thickness have great potential in solar energy conversion owing to their intrinsic bandgap.However,their photocatalytic efficiency falls far below the practical requirements because the generated electron-hole pairs rapidly recombine.We construct a metal-free 2D p–n junction heterophotocatalyst from CNs and violet phosphorene(VP)using a simple electrostatic self-assembly method.The experimental results and density functional theory calculations show that the built-in electric field of the p–n junction promotes photogenerated carrier transport at the heterojunction interface,thereby promoting the separation of photogenerated electron-hole pairs.Under visible-light illumination,the visible-light photocatalytic hydrogen and CO production rates of the CNs/VP heterojunction were increased by 5.85 and 1.51 times,respectively,when compared to that of CNs.This study provides new insights into the design of metal-free heterogeneous photocatalysts with high catalytic activity。 | Yong Wang Chengxin Zeng Liting Wu Yalin Dong Yu Zhang Dingyi Yang Wen Hu Jian Hao Hongzhe Pan Rusen Yang | 2023 | Journal of Materials Science & Technology2023,,15: | 0 |
| 6 | Piezoelectric Peptide and Metabolite Materials显示文摘Piezoelectric materials are important for many physical and electronic devices.Although many piezoelectric ceramics exhibit good piezoelectricity,they often show poor compatibility with biological systems that limits their biomedical applications.Piezoelectric peptide and metabolite materials benefit from their intrinsic biocompatibility,degradability,and convenient biofunctionalization and are promising candidates for biological and medical applications.Herein,we provide an account of the recent progress of research works on piezoelectric peptide and metabolite materials.This review focuses on the growth mechanism of peptide and metabolite micro-and nanomaterials.The influence of self-assembly processes on their piezoelectricity is discussed.Peptide and metabolite materials demonstrate not only outstanding piezoelectric properties but also unique electronic,optical,and physical properties,enabling their applications in nanogenerators,sensors,and optical waveguiding devices. | Hui Yuan Peipei Han Kai Tao Shuhai Liu Ehud Gazit Rusen Yang | 2019 | Research2019,,1: | 0 |
| 7 | Designable heteronanocrystals via interface redox reaction显示文摘The synergistic interaction of different components in heteronanocrystals induces interfacial phenomena and novel functionalities.Nonetheless,effective technologies to design and fabricate heteronanocrystals with materials on demand are still missing.Rich heterostructures in a copper patina are known to form at room temperature and under atmospheric pressure.The redox process of copper tarnish inspired the discovery of a simple strategy to achieve heteronanocrystals that contained elements from group 3-11 and group 14-16.The interface redox-induced method is self-regulating at ambient conditions and applicable for metal,semiconductor,and dielectric materials.The enhanced interface bonding endows the heteronanocrystals with outstanding stability and catalytic performance,while the modular approach enables the design and fabrication of heteronanocrystals with intended materials to meet different purposes. | Zhihua Li Yang Li Nannan Luo Yuanyuan Qie Dingyi Yang Guowei Cao Yuxiang Liu Ying Fu Na Li Wen Hu Min Zhang Rusen Yang Bo Tang | 2023 | Nano Research2023,16,4: | 0 |
| 8 | Giant electrocaloric effect in BiFeO_(3) and La codoped PbZr_(0.7)Ti_(0.3)O_(3) epitaxial thin films in a broad temperature range显示文摘Ferroelectric thin/thick films with large electrocaloric(EC)effect are critical for solid state cooling technologies.Here,large positive EC effects with two EC peaks in a broad temperature range(~100 K)were obtained in 0.95Pb_(0.92)La_(0.08)(Zr_(0.70)Ti_(0.30))_(0.98)O_(3)-0.05BiFeO_(3)(BFO-La-codoped PZT)epitaxial thin films deposited on the(100),(110)and(111)oriented SrTiO_(3)(STO)substrates by a sol-gel method.The thin film deposited on the(111)oriented STO substrate exhibited a stronger EC effect(~20.6 K at 1956 kV/cm)near room temperature.However,the thin films deposited on the(100)and(110)oriented STO substrates exhibited a stronger EC effect(~18.8 K at 1852 kV/cm and~20.8 K at 1230 kV/cm,respectively)around the peak of the dielectric permittivity(T_(m),~375 K).Particularly,as the direction of the applied electric field was switched(E<0),the DT of the(100)-oriented thin films around T_(m) was enhanced significantly from 18.8 K to 38.1 K.The self-induced-poling during the preparing process maybe plays a key role on the magic phenomenon.It can be concluded that the BFO-La-codoped PZT epitaxial thin films are promising candidates for application in the next solid-state cooling devices. | Miaomiao Zhang Laijun Liu Rusen Yang Ping Yu Qi Zhang Biaolin Peng | 2022 | Journal of Materiomics2022,8,1: | 0 |
| 9 | Power-to-chemicals:sustainable liquefaction of food waste with plasma-electrolysis显示文摘The increasing amount of food waste from various industrial,agricultural,and household sources is an environmental burden if managed inappropriately.Numerous waste management approaches have been developed for the disposal of food waste,but still suffer from either high cost,production of toxic by-products,or secondary environmental pollutions.Herein,we report a new and sustainable plasma electrolysis biorefinery route for the rapid and efficient liquefaction of food waste.During the plasma electrolysis process,only the solvent is added to liquefy the waste,and anions in the waste can contribute to catalyzing the biowaste conversion.While liquefying the waste,the highly reactive species produced in the plasma electrolysis process can efficiently reduce the content of O,N,and Cl in the liquefied products and oxidize most of the metals into solid residues.Especially,the removal rate of Na and K elements was greater than 81%,which is significantly higher than using the traditional oil bath liquefaction,resulting in a relatively high-quality biocrude oil with a high heating value of 25.86 MJ·kg^(-1).Overall,this proposed strategy may provide a new sustainable and eco-friendly avenue for the power-to-chemicals valorization of food waste under benign conditions. | Wenquan Xie Xianhui Zhang Dengke Xi Rusen Zhou Size Yang Patrick Cullen Renwu Zhou | 2023 | Frontiers of Chemical Science and Engineering2023,17,5: | 0 |
| 10 | Alternating current stimulation promotes neurite outgrowth and plasticity in neurons through activation of the PI3K/AKT signaling pathway显示文摘As a commonly used physical intervention,electrical stimulation(ES)has been demonstrated to be effective in the treatment of central nervous system disorders.Currently,researchers are studying the effects of electrical stimu-lation on individual neurons and neural networks,which are dependent on factors such as stimulation intensity,duration,location,and neuronal properties.However,the exact mechanism of action of electrical stimulation remains unclear.In some cases,repeated or prolonged electrical stimulation can lead to changes in the morphology or function of the neuron.In this study,immunofluorescence staining and Sholl analysis are used to assess changes in the neurite number and axon length to determine the optimal pattern and stimulation parameters of ES for neurons.Neuronal death and plasticity are detected by TUNEL staining and microelectrode array assays,respec-tively.mRNA sequencing and bioinformatics analysis are applied to predict the key targets of the action of ES on neurons,and the identified targets are validated by western blot analysis and qRT-PCR.The effects of alternating current stimulation(ACS)on neurons are more significant than those of direct current stimulation(DCS),and the optimal parameters are 3μA and 20 min.ACS stimulation significantly increases the number of neurites,the length of axons and the spontaneous electrical activity of neurons,significantly elevates the expression of growth-asso-ciated protein-43(GAP-43)without significant changes in the expression of neurotrophic factors.Furthermore,application of PI3K/AKT-specific inhibitors significantly abolishes the beneficial effects of ACS on neurons,con-firming that the PI3K/AKT pathway is an important potential signaling pathway in the action of ACS. | Hao Zhong Cong Xing Mi Zhou Zeyu Jia Song Liu Shibo Zhu Bo Li Hongjiang Yang Hongpeng Ma Liyue Wang Rusen Zhu Zhigang Qu Guangzhi Ning | 2023 | Acta Biochimica et Biophysica Sinica2023,55,11: | 0 |
| 11 | Rational Design of Biological Crystals with Enhanced Physical Properties by Hydrogen Bonding Interactions显示文摘Hydrogen bonds are non-covalent interactions and essential for assembling supermolecules into ordered structures in biological systems,endowing crystals with fascinating physical properties,and inspiring the construction of eco-friendly electromechanical devices.However,the interplay between hydrogen bonding and the physical properties is not fully understood at the molecular level.Herein,we demonstrate that the physical property of biological crystals with double-layer structures could be enhanced by rationally controlling hydrogen bonding interactions between amino and carboxyl groups.Different hydrogen bonding interactions result in various thermal,mechanical,electronic,and piezoelectric properties.In particular,the weak interaction between O and H atoms contributes to low mechanical strength that permits important ion displacement under stress,giving rise to a strong piezoelectric response.This study not only reveals the correlation between the hydrogen bonding and physical properties in double-layer structures of biological crystals but also demonstrates the potential of these crystals as functional biomaterials for high-performance energy-harvesting devices.Theoretical calculations and experimental verifications in this work provide new insights into the rational design of biomaterials with desirable physical properties for bioelectrical devices by modulating intermolecular interactions. | Hui Yuan Bin Xue Dingyi Yang Sigal Rencus-Lazar Yi Cao Ehud Gazit Dan Tan Rusen Yang | 2023 | Research2023,,3: | 0 |