Haidi Xu
Materials Science · Purdue University West Lafayette
Publications
99
Citations
3,046
Est. group size
—
Recurring co-author estimate
Active years
29
Publishing since 1998
Haidi Xu works on catalytic materials designed to clean up harmful emissions and improve energy conversion technologies, such as removing nitrogen oxides (NOx) from exhaust gases, combusting low-concentration methane, and improving fuel cell electrode materials. Much of the work focuses on precious-metal catalysts (like platinum and palladium) supported on oxide materials (such as ceria, zirconia, and zeolites), studying how their structure and composition affect performance. This research is relevant to environmental pollution control and clean energy applications.
Publication output has fluctuated over the past decade but shows a recent upward trend, rising from about 5-7 papers per year in the early 2020s to 9 in both 2024 and 2025.
Generated by claude-sonnet-5 from public bibliographic data · Jul 20, 2026
- A high-entropy iron-based perovskite rich in oxygen vacancies for efficient oxygen reduction in intermediate-temperature SOFCs
Journal of Materials Chemistry A · 2026
- Author response for "Revealing the effects of introducing Fe on the N <sub>2</sub> selectivity of Pt-SSZ-13 catalyst for ammonia selective catalytic oxidation"
2025
- Enhanced Water and Sulfur Resistance of a Palladium/Ceria-Zirconia Catalyst for Low-Concentration Methane Combustion Through Silicate Modifying Support Properties
SSRN Electronic Journal · 2025
- Revealing the Electronic Effects Between Pt and W on the Performance of Selective Catalytic Reduction of NOx with H2 over Pt-W/SSZ-13
Catalysts · 2025
- Revealing the effects of introducing Fe on the N <sub>2</sub> selectivity of Pt-SSZ-13 catalyst for ammonia selective catalytic oxidation
Catalysis Science & Technology · 2025
- Unveiling NO elimination performance on a Ce-based AdSCR catalyst
Journal of Rare Earths · 2025
- Thermally induced structural evolution of a silicate-ceria material boosting the activity of low-concentration methane combustion on its supported palladium catalyst
Separation and Purification Technology · 2025
- Unveiling the roles of Co3O4 in enhancing passive NOx adsorption (PNA) performance on CeZrO2
Chemical Engineering Journal · 2025
- Insights into the roles of Al in improving the H2-SCR performance of Pt/ZrTiO2 catalyst
Journal of Colloid and Interface Science · 2025
- Enhanced water and sulfur resistance of a palladium/ceria-zirconia catalyst for low-concentration methane combustion through silicate modifying support properties
Separation and Purification Technology · 2025
- Revealing the Roles of Rh in Inhibiting “NO<sub><i>x</i></sub> Puff” on the Cu/Ba-CeO<sub>2</sub> Catalyst during the Process of Lean NO<sub><i>x</i></sub> Trap
Industrial & Engineering Chemistry Research · 2024
- Pt–Cu dual-site synergistic construction in lean NOx traps(LNTs)towards high NH3 selectivity
Journal of the Energy Institute · 2024
- Engineering the structure of zirconia support to optimize palladium terrace sites and reaction product desorption for efficient low-concentration methane combustion
Separation and Purification Technology · 2024
- Synthesis, Characterization, and Activity Exploration of Pt/Al<sub>2</sub>O<sub>3</sub> Catalyst in Soot Oxidation: A Comprehensive Chemistry Laboratory Experiment
Journal of Chemical Education · 2024
- Optimization of isolated copper species on the NH3-SCR performance over Cu/SSZ-39 modified by ammonia water
Catalysis Today · 2024
- Applied Surface Science×5
- Chemical Engineering Journal×5
- Separation and Purification Technology×4
- ACS Applied Materials & Interfaces×3
- Journal of the Taiwan Institute of Chemical Engineers×3
- Fabio H. Ribeiro
Materials Science · Purdue University West Lafayette
- Umit S. Ozkan
Materials Science · The Ohio State University
- Jeffrey T. Miller
Materials Science · Purdue University West Lafayette
- David P. Dean
Materials Science · Purdue University West Lafayette
- Enrique Iglesia
Materials Science · Purdue University West Lafayette
This profile was generated automatically from public scholarly data (OpenAlex). Group size and activity levels are estimates derived from co-authorship patterns.
Last updated Jul 20, 2026.
Claim or correct this profile