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Associate Professor Bin Luo
Associate Professor

Bin Luo

Email: 
Phone: 
+61 7 334 63809

Overview

Background

A/Professor Bin Luo is currently an ARC Future Fellow and Group Leader in Australian Institute for Bioengineering and Nanotechnology (AIBN) at the University of Queensland (UQ). He received his doctoral degree in Physical Chemistry from National Center for Nanoscience and Technology (NCNST), University of Chinese Academy of Sciences (UCAS) in July 2013. In August 2014, Dr Luo joined UQ as a Postdoctoral Research Fellow in AIBN. He then secured highly competitive UQ Postdoctoral Research Fellowship (2015-2018), ARC DECRA Fellowship (2018-2021), and ARC Future Fellowship (2021-2025).

Research interests in Luo group mainly include

  • Design of functional materials for next generation energy storage applications, including multivalent metal batteries, redox flow batteries and solid state batteries.
  • Exploring new conceptual energy conversion or storage systems (e.g. flexible/micro-batteries, solar rechargeable battery).
  • Revealing the structure-performance relationship of functional materials via in/ex situ investigations.
  • Interaction of biomaterials and energy storage.

Availability

Associate Professor Bin Luo is:
Available for supervision
Media expert

Qualifications

  • Doctor of Philosophy, University of the Chinese Academy of Science

Research interests

  • Functional nanomaterials for energy related applications

    Development of new functional nanomaterials/nanostructures for energy related applications including rechargeable batteries, supercapacitors, and photocatalysis.

  • Next generation energy devices

    Design of next generation energy conversion or storage devices (i.e. flexible/transparent/microsized batteries, supercapacitors, or solar cells) and new conceptual energy storage system (i.e. solar rechargeable battery)

Research impacts

Dr Luo has been working in the field of functional materials for energy storage applications over 10 years and contributed more than 120 original publications on top ranking journals such as Adv. Mater., Energy Environ. Sci., Nano Energy, Adv. Sci., Small, etc. His work has received over 13,000 citations with h-index of 59 (google scholar). Dr Luo's research has generated significant novel IP: he is an inventor on 14 patents on functional nanomaterials and their applications for energy conversion and storage.

Works

Search Professor Bin Luo’s works on UQ eSpace

202 works between 2005 and 2026

201 - 202 of 202 works

2006

Conference Publication

Validity study by Monte Carlo method of an analytical theory for photon correlation diffusion in multi-layered media

Luo, Bin and Li, Jun (2006). Validity study by Monte Carlo method of an analytical theory for photon correlation diffusion in multi-layered media. Conference on Biophotonics and New Therapy Frontiers, Strasbourg France, Apr 03-05, 2006. BELLINGHAM: SPIE-INT SOC OPTICAL ENGINEERING. doi: 10.1117/12.662297

Validity study by Monte Carlo method of an analytical theory for photon correlation diffusion in multi-layered media

2005

Journal Article

A fast and accurate method for the simulation of the diffusing temporal light correlation in multi-layered turbid media

Luo Bin, , Li Jun, and He Sai-ling, (2005). A fast and accurate method for the simulation of the diffusing temporal light correlation in multi-layered turbid media. Optoelectronics Letters, 1 (1), 75-77. doi: 10.1007/BF03033623

A fast and accurate method for the simulation of the diffusing temporal light correlation in multi-layered turbid media

Funding

Current funding

  • 2026 - 2030
    Advanced Flow Battery for Synergetic Carbon Capture and Energy Storage
    ARC Discovery Projects
    Open grant
  • 2026 - 2030
    Sustainable Manufacturing of Bipolar Plates for Redox Flow Batteries
    ARC Mid-Career Industry Fellowships
    Open grant
  • 2026 - 2027
    Closed-Loop Electrochemical Upcycling of Lithium-Ion Battery Waste into High-Value Energy Materials
    Australia's Economic Accelerator Ignite Grants
    Open grant
  • 2026 - 2027
    Developing Advanced Iron/Iron Redox Flow Batteries: Mitigating Hydrogen Evolution
    UQ Deputy Vice-Chancellor (Research) Strategic Initiatives
    Open grant
  • 2026 - 2029
    SPACER - Shaping Porous Electrode Architecture to Improve Current Density and Energy Efficiency in Redox Flow Batteries
    European Union Horizon Europe - Marie Sklodowska-Curie Actions - Doctoral Networks
    Open grant
  • 2024 - 2027
    Advanced all-Iron flow batteries for stationary energy storage
    ARC Linkage Projects
    Open grant
  • 2023 - 2026
    Solar rechargeable Zinc-Bromine Flow Batteries
    ARC Discovery Projects
    Open grant
  • 2021 - 2027
    ARC Research Hub in New Safe and Reliable Energy Storage and Conversion Technologies (Industrial Transformation Research Hub administered by Deakin University)
    Deakin University
    Open grant

Past funding

  • 2026
    Ni K-edge X-ray absorption analysis of Cl-coordinated Ni single-atom catalysts enabling high-voltage Li¿Nn2 batteries
    Australian Nuclear Science and Technology Organisation
    Open grant
  • 2026
    Operando study of iron plating/stripping on carbon electrode for high performance acidic all iron flow batteries
    Australian Nuclear Science and Technology Organisation
    Open grant
  • 2026
    Ni K-edge XAS Investigation of Cl-Modified Ni Single-Atom Catalysts for High-Voltage Li¿N2 Batteries
    Australian Nuclear Science and Technology Organisation
    Open grant
  • 2025
    Structural Mechanism of Enhanced Zn2+/Li+ Storage in Bi-Doped Na3V2(PO4)3 Revealed by Synchrotron Powder Diffraction
    Australian Nuclear Science and Technology Organisation
    Open grant
  • 2025 - 2026
    Operando Monitor of Gas Evolution in Renewable Energy Systems (ARC LIEF administered by University of Technology Sydney)
    University of Technology Sydney
    Open grant
  • 2025
    Operando study of bromine/polybromide microdroplets chemistry on carbon electrode for high performance Zinc Bromine flow batteries
    Australian Nuclear Science and Technology Organisation
    Open grant
  • 2025
    Probing multi-redox mechanism of covalent organic frameworks in high-performance aluminium organic batteries via operando synchrotron piezo-controlled ATR-FTIR microspectroscopy
    Australian Nuclear Science and Technology Organisation
    Open grant
  • 2023
    Operando study of zinc plating chemistry on carbon electrodes for high performance anode-free Zn metal batteries
    Australian Nuclear Science and Technology Organisation
    Open grant
  • 2023
    Structure Directing Effect of Graphene additives on Polymer Carbonisation and Graphitisation
    Australian Nuclear Science and Technology Organisation
    Open grant
  • 2023 - 2024
    Electrode Material Optimisation for Iron Flow Batteries
    Innovation Connections
    Open grant
  • 2023 - 2024
    Electrolyte Optimisation for Iron Flow Batteries
    Innovation Connections
    Open grant
  • 2022
    Operando study of interactions between crystalline COF and Ionic Liquid for high performance Aluminium batteries
    Australian Nuclear Science and Technology Organisation
    Open grant
  • 2022
    Operando study of MXene confinement effects on alloying-type anodes for sodium ion batteries
    Australian Nuclear Science and Technology Organisation
    Open grant
  • 2022
    Understanding the electrocatalytic effects of metal sulfides/nitrides in Aluminium-Sulfur Batteries
    Australian Nuclear Science and Technology Organisation
    Open grant
  • 2021 - 2025
    Solar rechargeable batteries for wearable electronics
    ARC Future Fellowships
    Open grant
  • 2020
    In-situ structural characterisation of the electrochemical reaction of metal sulfides as alloying-type anodes for sodium ion storage
    Australian Nuclear Science and Technology Organisation
    Open grant
  • 2019
    In-situ characterisation for a novel carbon nanofiber cathode materials for high performance rechargeable aluminum-ion batteries
    Australian Nuclear Science and Technology Organisation
    Open grant
  • 2019
    Planar solar battery design based on new stretchable interdigitated electrodes
    UQ Foundation Research Excellence Awards
    Open grant
  • 2018
    In-situ Crystal Characterisation of Li-rich cathode materials for High-Performance Li-ion batteries
    Australian Nuclear Science and Technology Organisation
    Open grant
  • 2018
    In-situ characterisation of the high-voltage Fe redox in a novel sodium ion battery cathode material
    Australian Nuclear Science and Technology Organisation
    Open grant
  • 2018
    In-situ Crystal Characterisation of novel metal sulfide Cathodes for High Performance Rechargeable Aluminum-ion Batteries
    Australian Nuclear Science and Technology Organisation
    Open grant
  • 2018 - 2021
    New hierarchical electrode design for high-power lithium ion batteries (ARC Discovery Project administered by Griffith University)
    Griffith University
    Open grant
  • 2018
    In-situ characterisation of novel cathode for high performance Aluminum-ion batteries
    Australian Nuclear Science and Technology Organisation
    Open grant
  • 2018 - 2021
    Designing solar rechargeable batteries for efficient solar energy storage
    ARC Discovery Early Career Researcher Award
    Open grant
  • 2017 - 2018
    A new solar rechargeable lithium sulfur battery system
    UQ Early Career Researcher
    Open grant
  • 2016 - 2022
    Design of New Two-dimensional Materials for Lithium Sulfur Batteries
    ARC Linkage Projects
    Open grant
  • 2015 - 2016
    A new integrated photo-electrochemical device fabrication & testing system
    ARC Linkage Infrastructure, Equipment and Facilities
    Open grant
  • 2015 - 2018
    Designing new graphene-based functional nanocomposites for lithium ion batteries
    UQ Postdoctoral Research Fellowship
    Open grant

Supervision

Availability

Associate Professor Bin Luo is:
Available for supervision

Looking for a supervisor? Read our advice on how to choose a supervisor.

Available projects

  • New hierarchical electrode design for high-power lithium ion batteries

    This project aims to develop new types of hierarchical electrodes for high-rate lithium ion batteries with long cycling life. The key concepts are the development of multi-shelled hollow structured silicon-based anode and Li-rich layered oxides cathode to achieve both high power and energy density, and the adoption of graphene to further improve rate capability and cycling stability. Effective energy storage systems play an important role in the development of renewable energies and electric vehicles. The project outcomes will lead to innovative technologies in low carbon emission transportation and efficient energy storage systems.

  • Advanced flow battery for synergetic carbon capture and energy storage

    Develop a novel flow battery that combines renewable energy storage, CO2 capture, and bromide wastewater treatment into one integrated system. Outcomes include an innovative energy storage solution and advancements in carbon capture and wastewater treatment, contributing to clean energy systems.

  • Sustainable Manufacturing of Bipolar Plates for Redox Flow Batteries

    This project aims to develop composite bipolar plates for all-iron redox flow batteries, a critical component in renewable energy storage systems. The research will explore sustainable, cost-effective materials such as biomass carbon and recycled plastics and new manufacturing methods to enhance battery performance and durability. The project will help reduce Australia¿s reliance on imports and promote local value-added manufacturing. It also addresses global energy challenges by improving energy storage technologies, crucial for integrating renewable energy into power grids and achieving net-zero emissions. The outcomes will benefit both the Australian manufacturing industry and broader community through sustainable energy solutions.

  • Advanced all-Iron flow batteries for stationary energy storage

    Iron flow batteries are one of the most promising choices for clean, reliable and cost-effective long-duration energy storage. The main obstacle for large-scale commercial deployment is the low round-trip energy efficiency caused by the competitive side reaction that occurs at the negative electrode during battery charging. The project aims to address this issue by engineering the negative electrode-electrolyte interface with functional materials to improve battery performance and thus further reduce the cost of energy storage. Expected outcomes include new materials and methods for advanced battery technology and manufacturing. The success of the project will significantly support the national priority of net-zero carbon emissions by 2050.

Supervision history

Current supervision

  • Doctor Philosophy

    Functional Carbon materials for Stable Na Metal Anode

    Principal Advisor

  • Doctor Philosophy

    Carbon based functional materials for redox flow batteries

    Principal Advisor

  • Doctor Philosophy

    Solar rechargeable Zinc-Bromine Flow Batteries

    Principal Advisor

    Other advisors: Dr Peng Chen

  • Doctor Philosophy

    Functional Materials for Advanced Zinc ion Batteries

    Principal Advisor

  • Doctor Philosophy

    Solar rechargeable batteries for wearable electronics

    Principal Advisor

    Other advisors: Professor Lianzhou Wang

  • Doctor Philosophy

    Advanced all-iron flow batteries for stationary energy storage

    Principal Advisor

  • Doctor Philosophy

    Functional materials for high performance Zinc-Bromine flow batteries

    Principal Advisor

  • Doctor Philosophy

    Functional materials for high performance iron flow battery

    Principal Advisor

  • Doctor Philosophy

    Materials and Interface Engineering for Enhanced Reversibility and Stability in Rechargeable Aluminum-ion Batteries

    Principal Advisor

    Other advisors: Professor Lianzhou Wang

  • Doctor Philosophy

    Design of efficient and stable perovskite photoelectrode for flow batteries

    Associate Advisor

    Other advisors: Dr Peng Chen

  • Doctor Philosophy

    Development of Efficient Catalyst for Solar-driven Formox Process

    Associate Advisor

    Other advisors: Dr Mu Xiao

Completed supervision

Media

Enquiries

Contact Associate Professor Bin Luo directly for media enquiries about:

  • battery
  • carbon materials
  • energy storage
  • nanomaterials

Need help?

For help with finding experts, story ideas and media enquiries, contact our Media team:

communications@uq.edu.au