TY - JOUR
T1 - Engineering Bulk, Layered, Multicomponent Nanostructures with High Energy Density
AU - Huang, Guangwei
AU - Li, Xiaohong
AU - Lou, Li
AU - Hua, Yingxin
AU - Zhu, Guangjun
AU - Li, Ming
AU - Zhang, Hai Tian
AU - Xiao, Jianwei
AU - Wen, Bin
AU - Yue, Ming
AU - Zhang, Xiangyi
N1 - Publisher Copyright:
© 2018 WILEY-VCH Verlag GmbH & Co. KGaA, Weinheim
PY - 2018/5/29
Y1 - 2018/5/29
N2 - 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.
AB - 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.
KW - hybrid nanomaterials
KW - hybrid nanostructures
KW - multicomponent nanostructures
KW - nanocomposite
KW - nanocomposite magnets
UR - https://www.scopus.com/pages/publications/85046374735
U2 - 10.1002/smll.201800619
DO - 10.1002/smll.201800619
M3 - 文章
C2 - 29718577
AN - SCOPUS:85046374735
SN - 1613-6810
VL - 14
JO - Small
JF - Small
IS - 22
M1 - 1800619
ER -