Carbon, Год журнала: 2024, Номер unknown, С. 119684 - 119684
Опубликована: Окт. 1, 2024
Язык: Английский
Carbon, Год журнала: 2024, Номер unknown, С. 119684 - 119684
Опубликована: Окт. 1, 2024
Язык: Английский
Advanced Functional Materials, Год журнала: 2024, Номер unknown
Опубликована: Фев. 28, 2024
Abstract Rational manipulation of composition and microstructure design is recognized as an effective pathway to realize multifunctional high‐performance microwave absorber. In this work, necklace‐like hollow polyacrylonitrile (PAN)/carbon nanofibers are designed constructed through a simple continuous electrospinning‐carbonization‐etching route. Specifically, by varying the carbonization temperature, ratio PAN carbon content PAN/carbon can be effectively regulated, resulting in tunable electromagnetic parameters conductive loss capacities. After that, structure further introduced improve feature lightweight, impedance‐matching characteristics, interfacial polarization ability. Accordingly, exhibited frequency bandwidth 6.60 GHz minimum reflection −44.73 dB at 1.76 mm. Both experimental theoretical simulation results indicated that obtained possessed high chemical stability excellent absorbing performance, endowing them candidates for absorbers extreme conditions. Therefore, findings not only offered rationally manipulate but also provided novel technique make most engineering strengthening interface loss.
Язык: Английский
Процитировано
167Journal of Colloid and Interface Science, Год журнала: 2023, Номер 651, С. 494 - 503
Опубликована: Авг. 7, 2023
Язык: Английский
Процитировано
136Advanced Materials, Год журнала: 2024, Номер 36(19)
Опубликована: Янв. 30, 2024
Abstract Heterointerface engineering, which plays a pivotal role in developing advanced microwave‐absorbing materials, is employed to design zeolitic imidazolate framework (ZIF)–MXene nanocomposites. The ZIF–MXene composites are prepared by electrostatic self‐assembly of negatively charged titanium carbide MXene flakes and positively Co‐containing ZIF nanomaterials. This approach effectively creates abundant Mott–Schottky heterointerfaces exhibiting robust built‐in electric field (BIEF) effect, as evidenced experimental theoretical analyses, leading notable attenuation electromagnetic energy. Systematic manipulation the BIEF‐exhibiting heterointerface, achieved through topological modulation ZIF, proficiently alters charge separation, facilitates electron migration, ultimately enhances polarization relaxation loss, resulting exceptional wave absorption performance (reflection loss RL min = −47.35 dB effective bandwidth f E 6.32 GHz). present study demonstrates an innovative model system for elucidating interfacial mechanisms pioneers novel functional materials with characteristics spatial engineering.
Язык: Английский
Процитировано
107Nano-Micro Letters, Год журнала: 2024, Номер 16(1)
Опубликована: Апрель 15, 2024
With the diversified development of big data, detection and precision guidance technologies, electromagnetic (EM) functional materials devices serving multiple spectrums have become a hot topic. Exploring multispectral response is challenging meaningful scientific question. In this study, MXene/TiO
Язык: Английский
Процитировано
79Nano-Micro Letters, Год журнала: 2024, Номер 16(1)
Опубликована: Июнь 11, 2024
Abstract The exploration of novel multivariate heterostructures has emerged as a pivotal strategy for developing high-performance electromagnetic wave (EMW) absorption materials. However, the loss mechanism in traditional is relatively simple, guided by empirical observations, and not monotonous. In this work, we presented semiconductor–semiconductor–metal heterostructure system, Mo–MXene/Mo–metal sulfides (metal = Sn, Fe, Mn, Co, Ni, Zn, Cu), including semiconductor junctions Mott–Schottky junctions. By skillfully combining these distinct functional components (Mo–MXene, MoS 2 , metal sulfides), can engineer multiple heterogeneous interface with superior capabilities, broad effective bandwidths, ultrathin matching thickness. successful establishment gives rise to built-in electric field that intensifies electron transfer, confirmed density theory, which collaborates dielectric polarization mechanisms substantially amplify EMW absorption. We detailed synthesis series featuring both semiconductor–semiconductor semiconductor–metal interfaces. achievements were most pronounced Mo–MXene/Mo–Sn sulfide, achieved remarkable reflection values − 70.6 dB at thickness only 1.885 mm. Radar cross-section calculations indicate MXene/Mo–metal have tremendous potential practical military stealth technology. This work marks departure from conventional component design limitations presents pathway creation advanced MXene-based composites potent capabilities.
Язык: Английский
Процитировано
63Advanced Functional Materials, Год журнала: 2023, Номер 34(3)
Опубликована: Окт. 9, 2023
Abstract Heterogeneous interface regulation plays an important role in tailoring the intrinsic electromagnetic (EM) properties for obtaining excellent EM wave absorption, which still faces huge challenge. In this work, bi‐metal MOFs‐derived ZnFe 2 O 4 –ZnO‐Fe@C (ZZFC) microspheres with custom‐built heterogeneous interfaces are successfully fabricated via a confined growth strategy. Bi‐metal Fe–Zn–ZIF tailored coordination structure and chemical bonding first selected as precursor template. After undergoing annealing process, metal Fe 2+ host is converted into magnetic nanoparticles (NPs). The Zn transformed semiconductor zinc oxide (ZnO) increasing (101) crystal‐oriented growth. At same time, hosts further reacted to synthesize ferrite (ZnFe ). Formed catalyze organic ligands constitute graphitized carbon layers, confine of , ZnO, NPs. Combined well impendence synergy absorption mechanism (magnetic loss, polarization, conduction loss), optimized magnetic–dielectric exhibit outstanding minimum reflection loss −66.5 dB at only 2.0 mm thickness. MOF‐derived materials provide new sight design efficient system.
Язык: Английский
Процитировано
58Carbon, Год журнала: 2024, Номер 221, С. 118901 - 118901
Опубликована: Фев. 9, 2024
Язык: Английский
Процитировано
56Journal of Colloid and Interface Science, Год журнала: 2024, Номер 676, С. 217 - 226
Опубликована: Июль 14, 2024
Язык: Английский
Процитировано
55Journal of Material Science and Technology, Год журнала: 2023, Номер 175, С. 125 - 131
Опубликована: Сен. 9, 2023
Язык: Английский
Процитировано
54Journal of Colloid and Interface Science, Год журнала: 2024, Номер 678, С. 648 - 655
Опубликована: Авг. 26, 2024
Язык: Английский
Процитировано
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