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JG
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Prof. Junwei Gu

School of Chemistry and Chemical Engineering, Northwestern Polytechnical University, Xi'an 710072, China

Co-Affiliations:School of Materials Science and Engineering, Beihang UniversityNot explicitly stated in the provided text

Research Publications & English Decoded Briefs

Showing 3 publications
SCIENCE CHINA Materials2026DOI: 10.1007/s40843-025-3876-5

Ultrathin and flexible electromagnetic interference shielding films by interface-confinement strategy

Electromagnetic interference (EMI) shielding technology is evolving from traditional bulky metal enclosures toward ultrathin, conformable, and flexible films. However, as the thickness of the shielding layer decreases, the electromagnetic wave absorption efficiency significantly deteriorates, leading to a marked decline in overall shielding performance. To overcome this intrinsic 'thickness–performance dilemma', porous structural designs are often employed to enhance multiple internal reflections and absorption. Nevertheless, such strategies typically suffer from uncontrollable thickness, poor spatial uniformity, and low process compatibility. To address these challenges, a joint team from the Gwangju Institute of Science and Technology and Seoul National University proposed an embedded MXene-in-metal (EXIM) shielding strategy. By embedding a non-porous MXene layer within a metallic film, a metal–MXene–metal heterolamellar architecture was constructed. Remarkably, this ultrathin structure achieves an EMI shielding effectiveness of ~70 dB at only ~1 μm thickness (up to 80 dB at 1.9 μm), breaking the conventional trade-off between reduced thickness and performance degradation. The superior performance originates from the conductivity contrast between the metal and MXene layers, which forms electromagnetic confinement wells. The localized electromagnetic waves undergo multiple polarization losses induced by interfacial dipoles, resulting in efficient energy absorption at thin thicknesses. The study further reveals that the EMI shielding performance of EXIM films primarily depends on the number of metal–MXene heterointerfaces rather than the total thickness. Multilayer stacking (e.g., Cu/Ti3C2Tx/Cu) notably enhances absorption efficiency while imparting excellent isotropy and flexibility. Moreover, introducing a Cr–Al dual-metal passivation layer effectively suppresses MXene oxidation, ensuring long-term operational reliability. The EXIM films are compatible with conventional fabrication and packaging techniques, including physical vapor deposition and spray coating, enabling scalable and large-area production. Practical demonstrations in USB 3.0 chips and flexible Schottky diodes confirm their outstanding capability in mitigating Bluetooth interference and blocking electromagnetic noise. This work is pioneering in that it introduces a new shielding mechanism based on conductivity contrast-induced electromagnetic confinement, achieves ultrahigh shielding effectiveness and mechanical flexibility within an ultrathin (<2 μm) structure, and elucidates a dipole-dominated interfacial polarization loss mechanism that provides theoretical insights into the design of 2D-material-based heterostructured shielding systems. Moreover, it opens up a new path for EMI shielding to shift from 'thick structure reflection' to 'heterogeneous interface confined absorption', providing a novel solution for realizing free-form, interference-free intelligent electronic packaging.

SCIENCE CHINA Materials2026DOI: 10.1007/s40843-025-3903-4

Near-Perfect Light-Capture Materials with High Environmental Stability

Cross-wavelength near-perfect light capture technology is crucial in various fields, including spectroscopy, energy conversion, and electromagnetic control. Nevertheless, the primary challenge in broadband absorption is effectively coordinating the intrinsic response behavior of various electromagnetic waves across the nanometer-centimeter scale when interacting with matter. By adopting a multi-scale structural design strategy, the carbon-zirconium heterointerface is integrated into the macroscopic periodic unit cell (PUC) to develop an ultra-wideband light capture material. The optical coupling effect, strengthened by electronic transitions, molecular motion, and spatial scattering effects, endows ZC-PUC with exceptional light-capture performance ranging from ultraviolet to microwave frequencies. Specifically, the ZC-PUC absorber possesses a near-perfect absorption rate of 95.7% across the ultraviolet-visible-infrared spectrum (190–2500 nm), and an effective absorption coverage of 99.99% in the microwave and terahertz bands (1997.9 GHz). More importantly, the as-prepared material maintains the morphology structure and physical phase even when exposed to an alkaline or acidic environment for 365 days and simultaneously possesses stable light capture properties. The easily scalable approach retains excellent structural stability and ultra-wideband light trapping capability under extreme conditions, offering a versatile platform for the development of next-generation devices.

SCIENCE CHINA Materials2026DOI: 10.1007/s40843-025-4047-0

Facile Construction of VS2@GNSs Composites with 1D/2D Hierarchical Structures for Efficient Electromagnetic Wave Absorption

The proliferation of electronic devices has exacerbated electromagnetic pollution, necessitating advanced electromagnetic wave (EMW) absorbing materials. In this study, VS2 nanorods were uniformly grafted onto graphene nanosheets (GNSs) via a facile ball milling method, constructing 1D/2D hierarchical VS2@GNSs composites with superior EMW absorption properties. The minimal reflection loss (RLmin) reached -49.83 dB at a thickness of 1.83 mm, while an ultra-broad effective absorption bandwidth (EAB) of 6.72 GHz was achieved at 1.96 mm. These performances are attributed to enhanced impedance matching and EMW attenuation capacities. Computer simulation technology (CST) full-wave simulations confirmed remarkable radar cross-section (RCS) suppression, with a reduction value of up to 20.38 dB m2 compared to a metallic substrate. This work provides theoretical and experimental guidance for designing high-performance stealth materials.

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