Guangwei Huang
Yanshan University
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Publication
Featured researches published by Guangwei Huang.
Nano Letters | 2017
Xiaohong Li; Li Lou; Wenpeng Song; Qian Zhang; Guangwei Huang; Yingxin Hua; Hai-Tian Zhang; Jianwei Xiao; Bin Wen; Xiangyi Zhang
Hybrid nanostructures that comprise two or more nanoscale functional components are fascinating for applications in electronics, energy conversion devices, and biotechnologies. Their performances are strongly dependent on the characteristics of the individual components including the size, morphology, orientation, and distribution. However, it remains challenging to simultaneously control these structural properties in a three-dimensional (3D) hybrid nanostructure. Here, we introduce a robust strategy for concurrently manipulating these characteristics in a bulk SmCo/Fe(Co) nanocomposite. This method can tune nanocrystals in size (down to sub-10 nm), morphology (sphere, rod, or disc), and crystallographic orientation (isotropic or anisotropic). We have therefore achieved the desired nanostructures: oriented hard magnetic SmCo grains and homogeneously distributed soft magnetic Fe(Co) grains with high fractions (∼26 wt %) and small sizes (∼12.5 nm). The resulting anisotropic nanocomposite exhibits an energy product that is approximately 50% greater than that of its corresponding pure SmCo magnet and 35% higher than the reported largest value in isotropic SmCo/Fe(Co) systems. Our findings pave a new way to manipulating 3D hybrid nanostructures in a controllable manner.
Advanced Materials | 2017
Xiaohong Li; Li Lou; Wenpeng Song; Guangwei Huang; Fuchen Hou; Qian Zhang; Hai-Tian Zhang; Jianwei Xiao; Bin Wen; Xiangyi Zhang
Nanostructuring of magnetically hard and soft materials is fascinating for exploring next-generation ultrastrong permanent magnets with less expensive rare-earth elements. However, the resulting hard/soft nanocomposites often exhibit random crystallographic orientations and monomorphological equiaxed grains, leading to inferior magnetic performances compared to corresponding pure rare-earth magnets. This study describes the first fabrication of a novel bimorphological anisotropic bulk nanocomposite using a multistep deformation approach, which consists of oriented hard-phase SmCo rod-shaped grains and soft-phase Fe(Co) equiaxed grains with a high fraction (≈28 wt%) and small size (≈10 nm). The nanocomposite exhibits a record-high energy product (28 MGOe) for this class of bulk materials with less rare-earth elements and outperforms, for the first time, the corresponding pure rare-earth magnet with 58% enhancement in energy product. These findings open up the door to moving from a pure permanent-magnet system to a stronger nanocomposite system at lower costs.
Small | 2018
Guangwei Huang; Xiaohong Li; Li Lou; Yingxin Hua; Guangjun Zhu; Ming Li; Hai-Tian Zhang; Jianwei Xiao; Bin Wen; Ming Yue; Xiangyi Zhang
The precise control of individual components in multicomponent nanostructures is crucial to realizing their fascinating functionalities for applications in electronics, energy-conversion devices, and biotechnologies. However, this control remains particularly challenging for bulk, multicomponent nanomaterials because the desired structures of the constitute components often conflict. Herein, a strategy is reported for simultaneously controlling the structural properties of the constituent components in bulk multicomponent nanostructures through layered structural design. The power of this approach is illustrated by generating the desired structures of each constituent in a bulk multicomponent nanomaterial (SmCo + FeCo)/NdFeB, which cannot be attained with existing methods. The resulting nanostructure exhibits a record high energy density (31 MGOe) for this class of bulk nanocomposites composed of both hard and soft magnetic materials, with the soft magnetic fraction exceeding 20 wt%. It is anticipated that other properties beyond magnetism, such as the thermoelectric and mechanical properties, can also be tuned by engineering such layered architectures.
APL Materials | 2017
Wenpeng Song; Xiaohong Li; Li Lou; Yingxin Hua; Qian Zhang; Guangwei Huang; Xiangyi Zhang
Realizing grain alignment along easy magnetization axis in bulk SmCo7 nanocrystalline materials is crucial for their development as high-performance high-temperature magnets, yet it remains challenging. Here, we report the fabrication of anisotropic bulk SmCo7 nanocrystalline magnets with a small grain size of ∼20 nm and a (00l) texture using high-pressure thermal compression starting from partially amorphous precursors. The synthesized magnet exhibits a high energy product of 18.4 MGOe, 40% larger than the reported highest value (13 MGOe) for bulk nanostructured SmCo7 magnets, and outperforms its anisotropic coarse-grained counterpart. Moreover, our magnet shows a low coercivity temperature coefficient of β = −0.19%/°C. These findings make an important step toward the fabrication of oriented bulk nanostructures for practical applications.
Journal of Alloys and Compounds | 2014
Fengqing Wang; Xiaojie Hu; Xiaohong Li; Guangwei Huang; Yongmei Zhang; Xiangyi Zhang
Journal of Alloys and Compounds | 2015
Fengqing Wang; Xiaojie Hu; Guangwei Huang; Fuchen Hou; Xiangyi Zhang
Materials Letters | 2018
Guangwei Huang; Guangjun Zhu; Li Lou; Jingchao Yan; Wenpeng Song; Fuchen Hou; Yingxin Hua; Qian Zhang; Xiaohong Li; Xiangyi Zhang
IEEE Transactions on Magnetics | 2018
Wenpeng Song; Xiaohong Li; Li Lou; Yingxin Hua; Qian Zhang; Guangwei Huang; Fuchen Hou; Xiangyi Zhang
Journal of Non-crystalline Solids | 2016
Qian Zhang; Wenpeng Song; Guangwei Huang; Li Lou; Fuchen Hou; Defeng Guo; Xiaohong Li; Xiangyi Zhang
Journal of Alloys and Compounds | 2016
Qian Zhang; Wenpeng Song; Guangwei Huang; Li Lou; Siyuan Cheng; Hongyangsu Zhang; Yinhuan Ji; Xiaohong Li; Xiangyi Zhang