Carbon doped with binary heteroatoms (N,X–C, where X = P, B, or S) derived from polypyrrole for enhanced electromagnetic wave absorption at microwave frequencies
暂无分享,去创建一个
Zhiming Zhang | Jing Sui | L. Yu | G. Waterhouse | Fubin Liu | Liang Chen
[1] Zehua Zhou,et al. A seed germination-inspired interface polarization augmentation strategy toward superior electromagnetic absorption performance , 2022, Composites Communications.
[2] Hongjing Wu,et al. Oxygen Vacancy‐Induced Dielectric Polarization Prevails in the Electromagnetic Wave‐Absorbing Mechanism for Mn‐Based MOFs‐Derived Composites , 2022, Advanced Functional Materials.
[3] R. Che,et al. Hierarchical Engineering of Double‐Shelled Nanotubes toward Hetero‐Interfaces Induced Polarization and Microscale Magnetic Interaction , 2022, Advanced Functional Materials.
[4] Wenhuan Liu,et al. Solidification of heavy metals in lead smelting slag and development of cementitious materials , 2022, Journal of Cleaner Production.
[5] Gang Pan,et al. Hierarchical Core-Shell Co2 N/CoP Embedded in N, P-doped Carbon Nanotubes as Efficient Oxygen Reduction Reaction Catalysts for Zn-air Batteries. , 2022, Small.
[6] Ying Huang,et al. Size-Dependent Oxidation-Induced Phase Engineering for MOFs Derivatives Via Spatial Confinement Strategy Toward Enhanced Microwave Absorption , 2022, Nano-Micro Letters.
[7] Ying-Ying Ma,et al. Tunable Co/ZnO/C@MWCNTs based on carbon nanotube-coated MOF with excellent microwave absorption properties , 2022, Journal of Materials Science & Technology.
[8] Guangya Hou,et al. MoP Quantum Dot-Modified N,P-Carbon Nanotubes as a Multifunctional Separator Coating for High-Performance Lithium-Sulfur Batteries. , 2022, ACS applied materials & interfaces.
[9] Zirui Jia,et al. Magnetic manganese-based composites with multiple loss mechanisms towards broadband absorption , 2022, Nano Research.
[10] Hyung-Kyu Lim,et al. FeS2@N-C nanorattles encapsulated in N/S dual-doped graphene/carbon nanotube network composites for high performance and high rate capability anodes of sodium-ion batteries , 2022, Chemical Engineering Journal.
[11] Hongjing Wu,et al. Dielectric Loss Mechanism in Electromagnetic Wave Absorbing Materials , 2022, Advanced science.
[12] Liang Wang,et al. A Facile “Double‐Catalysts” Approach to Directionally Fabricate Pyridinic NB‐Pair‐Doped Crystal Graphene Nanoribbons/Amorphous Carbon Hybrid Electrocatalysts for Efficient Oxygen Reduction Reaction , 2022, Advanced materials.
[13] Jun Zhou,et al. Rational construction of heterogeneous interfaces for bimetallic MOFs-derived/rGO composites towards optimizing the electromagnetic wave absorption , 2022, Chemical Engineering Journal.
[14] Zhiming Zhang,et al. Cage-like eggshell membrane-derived Co-CoxSy-Ni/N,S-codoped carbon composites for electromagnetic wave absorption , 2022, Chemical Engineering Journal.
[15] R. Che,et al. Integrating hierarchical interfacial polarization in yeast-derived Mo2C/C nanoflower/microsphere nanoarchitecture for boosting microwave absorption performance , 2021, Carbon.
[16] Sai Che,et al. Research progress on carbon-based materials for electromagnetic wave absorption and the related mechanisms , 2021, New Carbon Materials.
[17] Xitian Zhang,et al. Pearl necklace-like CoMn-based nanostructures derived from metal-organic frames for enhanced electromagnetic wave absorption , 2021, Carbon.
[18] Qingyu Li,et al. Construction of heteroatom-doped and three-dimensional graphene materials for the applications in supercapacitors: A review , 2021, Journal of Energy Storage.
[19] X. Guan,et al. The controllable porous structure and s-doping of hollow carbon sphere synergistically act on the microwave attenuation , 2021, Carbon.
[20] Tie-hu Li,et al. Flexible hierarchical ZnO/AgNWs/carbon cloth-based film for efficient microwave absorption, high thermal conductivity and strong eElectro-thermal effect , 2021, Composites Part B: Engineering.
[21] Anran Li,et al. Dual heteroatoms co-doping strategy of graphene-based dielectric loss electromagnetic absorbent , 2021 .
[22] Yunhui Huang,et al. Porous N, B co-doped carbon nanotubes as efficient metal-free electrocatalysts for ORR and Zn-air batteries , 2021 .
[23] Z. Yao,et al. Regulating pyrolysis strategy to construct CNTs-linked porous cubic Prussian blue analogue derivatives for lightweight and broadband microwave absorption , 2021, Chemical Engineering Journal.
[24] Yibin Li,et al. Environmentally Friendly Bark-Derived Co-Doped Porous Carbon Composites for Microwave Absorption , 2021, SSRN Electronic Journal.
[25] Tie-hu Li,et al. Core-shell CoFe2O4@C nanoparticles coupled with rGO for strong wideband microwave absorption. , 2021, Journal of colloid and interface science.
[26] Bingbing Chen,et al. Multi-heteroatom-doped hollow carbon tubes as robust electrocatalysts for the oxygen reduction reaction, oxygen and hydrogen evolution reaction , 2021, Chemical Engineering Journal.
[27] Y. Hao,et al. Boron-doped helical carbon nanotubes: lightweight and efficient microwave absorbers , 2021, Journal of Materials Science: Materials in Electronics.
[28] Tie-hu Li,et al. Experimental design and theoretical evaluation of nitrogen and phosphorus dual-doped hierarchical porous carbon for high-performance sodium-ion storage , 2021 .
[29] G. Ji,et al. Prussian blue analogue derived carbon-based composites toward lightweight microwave absorption , 2021 .
[30] Xinghua Li,et al. Hydrothermal synthesis of nitrogen-doped graphene as lightweight and high-efficient electromagnetic wave absorbers , 2021, Journal of Materials Science: Materials in Electronics.
[31] Ufuoma I. Kara,et al. Engineering defects in 2D g-C3N4 for wideband, efficient electromagnetic absorption at elevated temperature , 2021 .
[32] R. Che,et al. Hollow Engineering to Co@N‐Doped Carbon Nanocages via Synergistic Protecting‐Etching Strategy for Ultrahigh Microwave Absorption , 2021, Advanced Functional Materials.
[33] Xiaohui Jiang,et al. High-performance electromagnetic wave absorption of FeNi/N, S-codoped carbon composites in 2–40 GHz , 2021, Carbon.
[34] Yue Zhao,et al. Heterostructure design of Fe3N alloy/porous carbon nanosheet composites for efficient microwave attenuation , 2021 .
[35] Ying Huang,et al. Magnetic porous N-doped carbon composites with adjusted composition and porous microstructure for lightweight microwave absorbers , 2021 .
[36] Xiaofeng Shi,et al. Recent progress of microwave absorption microspheres by magnetic-dielectric synergy. , 2021, Nanoscale.
[37] Tie-hu Li,et al. Polypyrrole-Based Composite Materials for Electromagnetic Wave Absorption , 2021 .
[38] Yi Huang,et al. A Review on Metal–Organic Framework-Derived Porous Carbon-Based Novel Microwave Absorption Materials , 2021, Nano-Micro Letters.
[39] Minmin Liu,et al. Superior microwave absorbing properties of O, S, N codoped carbon planar helixes via carbonization of polypyrrole spiral nanowires , 2020 .
[40] G. Ji,et al. Sustainable wood-based composites for microwave absorption and electromagnetic interference shielding , 2020, Journal of Materials Chemistry A.
[41] G. Stucky,et al. Electromagnetic microwave absorption theory and recent achievements in microwave absorbers , 2020 .
[42] Ying Huang,et al. Core-shell Ni@C encapsulated by N-doped carbon derived from nickel-organic polymer coordination composites with enhanced microwave absorption , 2020 .
[43] M. Antonietti,et al. Polymer-Derived Heteroatom-Doped Porous Carbon Materials. , 2020, Chemical reviews.
[44] L. Wang,et al. Facile synthesis of N, S-codoped honeycomb-like C/Ni3S2 composites for broadband microwave absorption with low filler mass loading. , 2020, Journal of colloid and interface science.
[45] Jin-Tao Ren,et al. Promotion of electrocatalytic nitrogen reduction reaction on N-doped porous carbon with secondary heteroatoms , 2020 .
[46] Na Liu,et al. Enhanced microwave absorption performance of sulfur-doped hollow carbon microspheres with mesoporous shell as a broadband absorber , 2020, Composites Communications.
[47] W. Cao,et al. Tailoring MOF-based materials to tune electromagnetic property for great microwave absorbers and devices , 2020 .
[48] Z. Dong,et al. Integration of CoFe Alloys and Fe/Fe3C Nanoparticles into N-Doped Carbon Nanosheets as Dual Catalytic Active Sites To Promote the Oxygen Electrocatalysis of Zn–Air Batteries , 2020, ACS Sustainable Chemistry & Engineering.
[49] Xuefeng Yu,et al. Multidimension-Controllable Synthesis of MOF-Derived Co@N-Doped Carbon Composite with Magnetic-Dielectric Synergy toward Strong Microwave Absorption. , 2020, Small.
[50] L. Qin,et al. Role of radical and non-radical pathway in activating persulfate for degradation of p-nitrophenol by sulfur-doped ordered mesoporous carbon , 2020 .
[51] Wenjin Zhang,et al. Nitrogen-doped carbon nanofibers with sulfur heteroatoms for improving microwave absorption , 2020, Journal of Materials Science.
[52] Hongjing Wu,et al. NiCo2O4 constructed by different dimensions of building blocks with superior electromagnetic wave absorption performance , 2020 .
[53] Ying Huang,et al. Carbon nanocages with N-doped carbon inner shell and Co/N-doped carbon outer shell as electromagnetic wave absorption materials , 2020 .
[54] Yubing Dong,et al. Prism-shaped hollow carbon decorated with polyaniline for microwave absorption , 2020 .
[55] Ying Huang,et al. Synthesis of lightweight N-doped graphene foams with open reticular structure for high-efficiency electromagnetic wave absorption , 2019, Chemical Engineering Journal.
[56] Bingbing Wang,et al. A review of metal oxide-related microwave absorbing materials from the dimension and morphology perspective , 2019, Journal of Materials Science: Materials in Electronics.
[57] W. Cao,et al. Electromagnetic Response and Energy Conversion for Functions and Devices in Low‐Dimensional Materials , 2019, Advanced Functional Materials.
[58] N. Wang,et al. Core-shell FeCo@carbon nanoparticles encapsulated in polydopamine-derived carbon nanocages for efficient microwave absorption , 2019, Carbon.
[59] Zhichuan J. Xu,et al. Biomass-Derived Porous Carbon-Based Nanostructures for Microwave Absorption , 2019, Nano-micro letters.
[60] F. Meng,et al. Interface Modulating CNTs@PANi Hybrids by Controlled Unzipping of the Walls of CNTs To Achieve Tunable High-Performance Microwave Absorption. , 2019, ACS applied materials & interfaces.
[61] Zhongyuan Huang,et al. One-pot synthesis of Fe/N/S-doped porous carbon nanotubes for efficient oxygen reduction reaction , 2019, Journal of Materials Chemistry A.
[62] Zhihong Yang,et al. Extended Working Frequency of Ferrites by Synergistic Attenuation through a Controllable Carbothermal Route Based on Prussian Blue Shell. , 2018, ACS applied materials & interfaces.
[63] Ying Wang,et al. Prussian blue analogues derived magnetic FeCo alloy/carbon composites with tunable chemical composition and enhanced microwave absorption. , 2018, Journal of colloid and interface science.
[64] K. Kar,et al. Lightweight and High-Performance Microwave Absorbing Heteroatom-Doped Carbon Derived from Chicken Feather Fibers , 2018 .
[65] Zhichuan J. Xu,et al. A Voltage‐Boosting Strategy Enabling a Low‐Frequency, Flexible Electromagnetic Wave Absorption Device , 2018, Advanced materials.
[66] Yongfeng Hu,et al. Carbon Nanosheets Containing Discrete Co-Nx-By-C Active Sites for Efficient Oxygen Electrocatalysis and Rechargeable Zn-Air Batteries. , 2018, ACS nano.
[67] M. Cao,et al. Chemical reduction dependent dielectric properties and dielectric loss mechanism of reduced graphene oxide , 2018 .
[68] Yonghong Cheng,et al. Design of carbon sphere/magnetic quantum dots with tunable phase compositions and boost dielectric loss behavior , 2018 .
[69] G. Wen,et al. Facile fabrication of boron and nitrogen co-doped carbon@Fe2O3/Fe3C/Fe nanoparticle decorated carbon nanotubes three-dimensional structure with excellent microwave absorption properties , 2018 .
[70] Lai-fei Cheng,et al. Preparation of nitrogen and sulfur co-doped ordered mesoporous carbon for enhanced microwave absorption performance , 2017, Nanotechnology.
[71] Xianxi Zhang,et al. Promotion of Electrocatalytic Hydrogen Evolution Reaction on Nitrogen-Doped Carbon Nanosheets with Secondary Heteroatoms. , 2017, ACS nano.
[72] Hongli Zhu,et al. Lightweight and efficient microwave absorbing materials based on walnut shell-derived nano-porous carbon. , 2017, Nanoscale.
[73] Ying Wang,et al. Recent Advances in Conjugated Polymer-Based Microwave Absorbing Materials , 2017, Polymers.
[74] Q. Cao,et al. CoNi@SiO2@TiO2 and CoNi@Air@TiO2 Microspheres with Strong Wideband Microwave Absorption , 2016, Advanced materials.
[75] Jun Ma,et al. Constructing Uniform Core-Shell PPy@PANI Composites with Tunable Shell Thickness toward Enhancement in Microwave Absorption. , 2015, ACS applied materials & interfaces.
[76] Zhibin Yang,et al. Cross‐Stacking Aligned Carbon‐Nanotube Films to Tune Microwave Absorption Frequencies and Increase Absorption Intensities , 2014, Advanced materials.
[77] Jian-Rong Zhang,et al. Hair fiber as a precursor for synthesizing of sulfur- and nitrogen-co-doped carbon dots with tunable luminescence properties , 2013 .
[78] W. Xie,et al. Effects of diameter and hollow structure on the microwave absorption properties of short carbon fibers , 2012 .
[79] M. Wan,et al. Microtubules of polyaniline as new microwave absorbent materials , 2001 .