Liqiang Wang

About Liqiang Wang

Liqiang Wang, With an exceptional h-index of 2 and a recent h-index of 2 (since 2020), a distinguished researcher at City University of Hong Kong, specializes in the field of Architected Materials, 3D Printing, Micro/nano-machanics.

His recent articles reflect a diverse array of research interests and contributions to the field:

Full-composition-gradient in-situ alloying of Cu–Ni through laser powder bed fusion

Additively manufactured copper alloy with heterogeneous nanoprecipitates-dislocation architecture for superior strength-ductility-conductivity synergy

Enhancing detection accuracy via controlled release of 3D-printed microlattice nasopharyngeal swabs

Hierarchical crystalline–amorphous nanocomposites with high strength and large deformability enabled by elemental diffusion

Pulse irradiation synthesis of metal chalcogenides on flexible substrates for enhanced photothermoelectric performance

High-precision Cu alloy microlattices with superior energy absorption capacity enabled by nanoprecipitation engineering

Hierarchical Bamboo/Silver Nanoparticle Composites for Sustainable Water Purification

In Situ TEM Characterization and Modulation for Phase Engineering of Nanomaterials

Liqiang Wang Information

University

Position

PhD candidate

Citations(all)

94

Citations(since 2020)

94

Cited By

0

hIndex(all)

2

hIndex(since 2020)

2

i10Index(all)

2

i10Index(since 2020)

2

Email

University Profile Page

Google Scholar

Liqiang Wang Skills & Research Interests

Architected Materials

3D Printing

Micro/nano-machanics

Top articles of Liqiang Wang

Full-composition-gradient in-situ alloying of Cu–Ni through laser powder bed fusion

Additive Manufacturing

2024/4/25

Additively manufactured copper alloy with heterogeneous nanoprecipitates-dislocation architecture for superior strength-ductility-conductivity synergy

Additive Manufacturing

2024/3/25

Enhancing detection accuracy via controlled release of 3D-printed microlattice nasopharyngeal swabs

Communications Engineering

2024/3/4

Hierarchical crystalline–amorphous nanocomposites with high strength and large deformability enabled by elemental diffusion

Journal of Materials Science & Technology

2024/2/1

Pulse irradiation synthesis of metal chalcogenides on flexible substrates for enhanced photothermoelectric performance

Nature Communications

2024/1/25

High-precision Cu alloy microlattices with superior energy absorption capacity enabled by nanoprecipitation engineering

Scripta Materialia

2024/1/15

Hierarchical Bamboo/Silver Nanoparticle Composites for Sustainable Water Purification

Langmuir

2023/5/25

In Situ TEM Characterization and Modulation for Phase Engineering of Nanomaterials

2023/12/6

Symbiotically engineered crystalline-amorphous nanostructure in a strong-yet-stable Al alloy with large twinning-induced plasticity

Acta Materialia

2023/9/15

Superelastic NiTi functional components by high-precision laser powder bed fusion process: The critical roles of energy density and minimal feature size

Micromachines

2023/7/18

Lightweight, ultra-tough, 3D-architected hybrid carbon microlattices

Matter

2022/11/2

3D printing of hierarchically strengthened medium-entropy alloy microlattices via structure-material-process integration

Proceedings of The 25th Annual Conference of HKSTAM 2022 The 17th Jiangsu–Hong Kong Forum on Mechanics and Its Application

2022/4/23

See List of Professors in Liqiang Wang University(City University of Hong Kong)

Co-Authors

academic-engine