Chinedu Okere | Engineering | Best Researcher Award

Dr. Chinedu Okere | Engineering | Best Researcher Award 

University of Houston | United States

Dr. Chinedu (Junior) Okere is a dynamic early-career researcher whose interests span subsurface hydrogen generation, large-scale hydrogen storage in geological formations, experimental and numerical modelling of CO₂ capture, utilisation and storage (CCUS), methane leakage from orphaned wells, and drilling/fracturing fluid design and formation-damage mitigation in petroleum reservoirs. His professional trajectory has taken him from graduate research at the China University of Petroleum (Beijing) (M.Eng., 2022) to doctoral studies at the Texas Tech University (Ph.D., 2025) and onward to a post-doctoral appointment in the Department of Petroleum Engineering at the University of Houston (from mid-2025). In these roles he has supervised PhD students, managed a U.S. Department of Energy-funded CarbonSAFE project on CO₂ storage, and led the development of grant proposals, patents and peer-reviewed publications. According to his Google Scholar profile he has to date achieved 659 citations and an h-index of 15, with an i10-index of 19. His publication record includes a broad spectrum of articles (20+, depending on counting method) covering topics from “clean hydrogen generation from petroleum reservoirs” to fuzzy-ball fluid‐induced damage in tight reservoirs, reservoir suitability for hydrogen storage, and methane leakage from abandoned wells. Most recently, his first‐author papers (2024-2025) address techno-economic feasibility of in-situ hydrogen production from petroleum reservoirs, SARA-based experimental and numerical investigations of in-situ hydrogen generation, and comparative numerical studies for optimisation of hydrogen production and CCUS strategies. In recognition of his impact he has received numerous honours including the 2024 International Inventions Awards – Hydrogen Energy Best Researcher Award, and the Society of Petroleum Engineers Permian Basin Scholarship. With strong interdisciplinary credentials spanning petroleum engineering, energy systems, reservoir simulation, and hydrogen/CCUS technologies, Dr. Okere stands out as an emerging scholar bridging the conventional oil-&-gas domain with the clean/hydrogen energy transition. His h-index of 15 reflects a solid early‐career impact: it means he has at least 15 publications each cited at least 15 times. (The h-index concept was originally proposed by J. E. Hirsch as a simple measure of productivity and citation impact. Going forward, his strong publication momentum, growing citation base and leadership in grant/industry-adjacent projects suggest that he is well-positioned to further increase both his research output and influence in the hydrogen/CCUS engineering community.

Profiles: Scopus | Orcid | Google Scholar 

Featured Publications

Okere, C. J., & Sheng, J. J. (2023). Review on clean hydrogen generation from petroleum reservoirs: Fundamentals, mechanisms, and field applications. International Journal of Hydrogen Energy, 101.

Edouard, M. N., Okere, C. J., Ejike, C., Dong, P., & Suliman, M. A. M. (2023). Comparative numerical study on the co-optimization of CO₂ storage and utilization in EOR, EGR, and EWR: Implications for CCUS project development. Applied Energy, 347, 121448.

Eyitayo, S. I., Okere, C. J., Hussain, A., Gamadi, T., & Watson, M. C. (2024). Synergistic sustainability: Future potential of integrating produced water and CO₂ for enhanced carbon capture, utilization, and storage (CCUS). Journal of Environmental Management, 351, 119713.

He, J., Okere, C. J., Su, G., Hu, P., Zhang, L., Xiong, W., & Li, Z. (2021). Formation damage mitigation mechanism for coalbed methane wells via refracturing with fuzzy-ball fluid as temporary blocking agents. Journal of Natural Gas Science and Engineering, 90, 103956.

Okere, C. J., Su, G., Zheng, L., Cai, Y., Li, Z., & Liu, H. (2020). Experimental, algorithmic, and theoretical analyses for selecting an optimal laboratory method to evaluate working fluid damage in coal bed methane reservoirs. Fuel, 282, 118513.

Tao, X., Okere, C. J., Su, G., & Zheng, L. (2022). Experimental and theoretical evaluation of interlayer interference in multi-layer commingled gas production of tight gas reservoirs. Journal of Petroleum Science and Engineering, 208, 109731.

Okere, C. J., & Sheng, J. J. (2024). A new modelling approach for in-situ hydrogen production from heavy oil reservoirs: Sensitivity analysis and process mechanisms. Energy, 302, 131817.

Opara, S. U., & Okere, C. J. (2024). A review of methane leakage from abandoned oil and gas wells: A case study in Lubbock, Texas, within the Permian Basin. Energy Geoscience, 5(3), 100288.

Chao Cai | Additive Manufacturing | Young Scientist Award | 13164

Dr. Chao Cai | Additive Manufacturing | Young Scientist Award

Dr. Chao Cai, Huazhong University of Science and Technology, School of Materials Science and Engineering, China

Dr. Chao Cai is a distinguished scholar at the School of Materials Science and Engineering, Huazhong University of Science and Technology, China. His research focuses on advanced materials development, including functional materials, energy storage, and nanotechnology, contributing to cutting-edge innovations in materials science.

Profile

Scopus

Educational Qualification🎓

Cai Chao’s academic journey is a testament to unwavering dedication and an insatiable curiosity about materials science. Graduating with honors from top-tier institutions in China, he laid the groundwork for a career deeply rooted in cutting-edge research. His strong foundation in theoretical and applied science enabled him to pursue advanced studies in the fields of additive manufacturing and hot isostatic pressing (HIP). This academic rigor equipped him with the expertise required to address the most challenging problems in materials processing, aerospace, and nuclear fusion.

Professional Endeavors 🏢

Currently an Associate Professor and Master/Doctoral Supervisor at the prestigious Huazhong University of Science and Technology (HUST), Chao has been pivotal in bridging academic knowledge and industry applications. As a principal investigator, he has successfully led nine impactful research projects funded by national and provincial bodies, including the Young Scientist Project and the National Natural Science Foundation of China. These projects reflect his ability to align academic pursuits with real-world challenges in advanced manufacturing.

In addition, his editorial roles with journals like Advanced Powder Materials and Additive Manufacturing Frontiers underscore his commitment to sharing knowledge and mentoring the next generation of materials scientists.

Contributions and Research Focus 🔬

Cai’s work focuses on the theoretical and practical applications of hot isostatic pressing and additive manufacturing. These technologies, critical to aerospace and nuclear fusion, are vital for advancing materials performance, energy efficiency, and national defense.

His contributions span:

  • Innovative Applications: Revolutionizing material densification through HIP, improving structural integrity for aerospace components.
  • Additive Manufacturing: Developing novel techniques for 3D printing metals and alloys, reducing waste and improving design flexibility.
  • Interdisciplinary Integration: Collaborating across fields to optimize materials for high-temperature and high-pressure environments.

Accolades and Recognition 🏆

Cai Chao’s achievements have earned him numerous accolades:

  • Young Talent of China Association for Science and Technology (CAST): A recognition of his contributions to advancing science in China.
  • Hubei Province’s ‘Hundred Talents Plan’: A program that highlights his role in regional innovation.
  • Wuhan Talents Award: Celebrating his exceptional contributions to science and technology.

In addition, his 16 patents demonstrate his ability to convert theoretical research into practical innovations, while his 3,264 citations and publications in leading journals like Int. J. Mach. Tools Manuf. and Addit. Manuf. affirm his standing in the scientific community.

Impact and Influence 🌍

Cai’s work is not confined to laboratories or academic circles—it extends to industries and national strategies. His innovations have significantly enhanced materials used in aerospace and nuclear fusion, areas critical to China’s defense and energy sectors. By advancing HIP and additive manufacturing technologies, he has:

  • Enabled the development of lighter, stronger materials for aviation and space exploration.
  • Contributed to the creation of safer and more efficient nuclear reactors.
  • Fostered sustainable practices by reducing material waste during manufacturing.

Publication Top Notes

Author: Cheng, K., Cao, Y., Jiang, Y., Cai, C., Shi, Y.

Journal: Materials and Design

Year: 2025

Author: Shi, Y., Yan, C., Song, B., Liu, G., Ouyang, Z.

Journal: Additive Manufacturing Frontiers, 

Year: 2024

Author: Sun, X., Cai, C., Pan, S., Bao, N., Liu, N.

Journal: Mathematics

Year: 2021, 

Author: Qiu, Y., Zheng, B., Cai, C.

Journal: Jisuanji Gongcheng/Computer Engineering

Year:  2021

Author: Sun, X., Ding, Z., Cai, C., Pan, S.

Journal: Natural Science Edition

Year:  2024