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Zhenxiang Cheng

University of Wollongong · AU
Area of research
Materials Chemistry · Electronic, Optical and Magnetic Materials
Research interest
Research focused on Capacitor and Dielectric, with related work in Energy storage, Ferroelectricity, Saturation (graph theory). Notable publications include 'Perovskite lead-free dielectrics for energy storage applications', 'Ultra-high energy storage performance with mitigated polarization saturation in lead-free relaxors', and 'Fatigue‐Free and Bending‐Endurable Flexible Mn‐Doped Na 0.5 Bi 0.5 TiO 3 ‐BaTiO 3 ‐BiFeO 3 Film Capacitor with an Ultrahigh Energy Storage Performance'.
h-index
citations
4,165
works
43
NIH funding
primary concept
email

Recent publications

Ru Single Atoms Anchored on Oxygen‐Vacancy‐Rich ZrO<sub>2‐x</sub>/C for Synergistically Enhanced Hydrogen Oxidation
Advanced Science 2025cited by 9position: lastdoi
Nanoarchitectonics of N‐ and S‐Doped Nanoporous Biocarbons with High Specific Surface Area from Casein and Dithiooxamide for Supercapacitor Applications
Advanced Energy and Sustainability Research 2025cited by 6position: middledoi
Flat band and its related topological states in the double halide perovskites A2CuSbM6 (A = K, Rb, Cs; M = Cl, Br, I)
Applied Materials Today 2025cited by 3position: middledoi
Magnetic Field‐Driven Catalysis: Revealing Enhanced Oxygen Reactions in Li‐O <sub>2</sub> Batteries Using Tailored Magnetic Nanocatalysts
Advanced Science 2025cited by 1position: middledoi
Diffusosphere engineering in BNT-based multilayer heterogeneous film capacitors for high performance
Journal of Materiomics 2024cited by 16position: middledoi
Topological electride Hf<sub>2</sub>Se: Enhanced hydrogen evolution reaction activity from nontrivial topological Fermi arc
EcoEnergy 2024cited by 11position: middledoi
Unlocking Quantum Catalysis in Topological Trivial Materials: A Case Study of Janus Monolayer MoSMg
Small Science 2024cited by 7position: middledoi
Topological Vortex Domain Engineering for High Dielectric Energy Storage Performance
Advanced Energy Materials 2023cited by 79position: lastdoi
Simultaneously enhanced energy storage performance and luminance resistance in (K <sub>0.5</sub>Na <sub>0.5</sub>)NbO <sub>3</sub>-based ceramics via synergistic optimization strategy
Journal of Advanced Ceramics 2023cited by 36position: lastdoi
High Energy Storage Performance and Large Electrocaloric Response in Bi<sub>0.5</sub>Na<sub>0.5</sub>TiO<sub>3</sub>–Ba(Zr<sub>0.2</sub>Ti<sub>0.8</sub>)O<sub>3</sub> Thin Films
ACS Applied Materials & Interfaces 2022cited by 68position: lastdoi
4-inch Ternary BiFeO<sub>3</sub>–BaTiO<sub>3</sub>–SrTiO<sub>3</sub> Thin Film Capacitor with High Energy Storage Performance
ACS Energy Letters 2021cited by 66position: lastdoi
Flexible Lead-Free Ba0.5Sr0.5TiO3/0.4BiFeO3-0.6SrTiO3 Dielectric Film Capacitor with High Energy Storage Performance
Nanomaterials 2021cited by 19position: lastdoi
Energy storage performance of flexible NKBT/NKBT-ST multilayer film capacitor by interface engineering
Nano Energy 2020cited by 126position: lastdoi
Flexible Lead‐Free Perovskite Oxide Multilayer Film Capacitor Based on (Na<sub>0.8</sub>K<sub>0.2</sub>)<sub>0.5</sub>Bi<sub>0.5</sub>TiO<sub>3</sub>/Ba<sub>0.5</sub>Sr<sub>0.5</sub>(Ti<sub>0.97</sub>Mn<sub>0.03</sub>)O<sub>3</sub> for High‐Performance Dielectric Energy Storage
Advanced Energy Materials 2020cited by 105position: lastdoi
Flexible lead-free BFO-based dielectric capacitor with large energy density, superior thermal stability, and reliable bending endurance
Journal of Materiomics 2020cited by 70position: lastdoi
Toward Multifunctional Electronics: Flexible NBT-Based Film with a Large Electrocaloric Effect and High Energy Storage Property
ACS Applied Materials & Interfaces 2020cited by 59position: lastdoi
van der Waals force layered multiferroic hybrid perovskite (CH<sub>3</sub>NH<sub>3</sub>)<sub>2</sub>CuCl<sub>4</sub> single crystals
Physical Chemistry Chemical Physics 2020cited by 25position: middledoi
Rich novel zero-dimensional (0D), 1D, and 2D topological elements predicted in the <i>P</i>6<sub>3</sub>/<i>m</i> type ternary boride HfIr<sub>3</sub>B<sub>4</sub>
Nanoscale 2020cited by 22position: middledoi
Ultra-high energy storage performance with mitigated polarization saturation in lead-free relaxors
Journal of Materials Chemistry A 2019cited by 265position: middledoi
Fatigue‐Free and Bending‐Endurable Flexible Mn‐Doped Na<sub>0.5</sub>Bi<sub>0.5</sub>TiO<sub>3</sub>‐BaTiO<sub>3</sub>‐BiFeO<sub>3</sub> Film Capacitor with an Ultrahigh Energy Storage Performance
Advanced Energy Materials 2019cited by 228position: lastdoi
Triaxial braided piezo fiber energy harvesters for self-powered wearable technologies
Journal of Materials Chemistry A 2019cited by 123position: middledoi
Valence mediated tunable magnetism and electronic properties by ferroelectric polarization switching in 2D FeI<sub>2</sub>/In<sub>2</sub>Se<sub>3</sub> van der Waals heterostructures
Nanoscale 2019cited by 113position: middledoi
High thermoelectric performance in Cu<sub>2</sub>Se superionic conductor with enhanced liquid-like behaviour by dispersing SiC
Journal of Materials Chemistry A 2019cited by 101position: middledoi
Flexible, Temperature-Resistant, and Fatigue-Free Ferroelectric Memory Based on Bi(Fe<sub>0.93</sub>Mn<sub>0.05</sub>Ti<sub>0.02</sub>)O<sub>3</sub> Thin Film
ACS Applied Materials & Interfaces 2019cited by 83position: lastdoi
Design of an all-inorganic flexible Na<sub>0.5</sub>Bi<sub>0.5</sub>TiO<sub>3</sub>-based film capacitor with giant and stable energy storage performance
Journal of Materials Chemistry A 2019cited by 76position: lastdoi
Core–shell nanostructures introduce multiple potential barriers to enhance energy filtering for the improvement of the thermoelectric properties of SnTe
Nanoscale 2019cited by 67position: lastdoi
Flexible, Temperature‐Stable, and Fatigue‐Endurable PbZr<sub>0.52</sub>Ti<sub>0.48</sub>O<sub>3</sub> Ferroelectric Film for Nonvolatile Memory
Advanced Electronic Materials 2019cited by 39position: lastdoi
Predicting excellent anisotropic thermoelectric performance of the layered oxychalcogenides BiAgOCh (Ch = S, Se, and Te)
Computational Materials Science 2019cited by 21position: lastdoi
Magneto-Seebeck effect in Co<sub>2</sub>FeAl/MgO/Co<sub>2</sub>FeAl: first-principles calculations
Physical Chemistry Chemical Physics 2019cited by 16position: lastdoi
Magnetic domain-wall induced ferroelectric polarization in rare-earth orthoferrites AFeO<sub>3</sub> (A = Lu, Y, Gd): first-principles calculations
Journal of Materials Chemistry C 2019cited by 16position: middledoi

Grants

No grants ingested yet.

Frequent collaborators

Jin Qian · Columbia University12 papers (2019–2024)Yuanxu Wang · University of Houston9 papers (2018–2019)Panpan Lv · Fudan University8 papers (2019–2024)Changhong Yang · Shandong University8 papers (2019–2021)Shifeng Huang · University of California System8 papers (2019–2021)Ya-jie Han · Shihezi University6 papers (2019–2020)Shi Xue Dou · University of Technology Sydney6 papers (2014–2018)Xin Cheng · Shandong University6 papers (2019–2021)Xiujuan Lin · Shandong University5 papers (2019–2020) · 5 papers (2018–2019)Zheyin Yu · University of Wollongong5 papers (2014–2018)Xiaolin Wang · Weifang University of Science and Technology5 papers (2014–2020) · 4 papers (2018–2019)Shaymaa Al-Rubaye · University of Wollongong4 papers (2016–2018)Wenxuan Wang · UNSW Sydney4 papers (2018–2019)Ranjusha Rajagopalan · Central South University3 papers (2016–2018)Jiwei Zhai · Tongji University3 papers (2022–2024)Bo Shen · Tongji University3 papers (2022–2024)Zhixin Tai · University of Wollongong3 papers (2014–2018)Chandrasekar M. Subramaniyam · The University of Texas at Austin3 papers (2016–2018)