Yujing Yang | Climate-Responsive Architecture | Innovative Research Award

Innovative Research Award

Yujing Yang
Shanxi University

Yujing Yang
Affiliation Shanxi University
Country China
Scopus ID 55946229700
Documents 7
Citations 49
h-index 4
Subject Area Low Carbon in Engineering
Event Architecture Engineers Awards
ORCID 0000-0001-6249-4841

The Innovative Research Award recognizes researchers whose scholarly activities demonstrate meaningful contributions to scientific advancement and sustainable engineering. Yujing Yang of Shanxi University has established a research profile emphasizing low-carbon engineering principles, reflected through indexed publications, citations, and measurable academic impact.[1]

Abstract

Yujing Yang’s academic activities emphasize sustainable engineering and low-carbon technologies through peer-reviewed research. Publication metrics, citation performance, and scholarly visibility indicate an emerging contribution to environmentally responsible engineering research and innovation, supporting recognition through the Innovative Research Award.[1]

Keywords

  • Low Carbon Engineering
  • Sustainable Engineering
  • Energy Efficiency
  • Environmental Engineering
  • Innovation

Introduction

Low-carbon engineering has become an essential discipline supporting sustainable infrastructure and environmental responsibility. Yujing Yang’s research aligns with these objectives by exploring engineering approaches that encourage efficiency, reduced emissions, and practical sustainability solutions while contributing to internationally indexed scientific literature and collaborative academic progress.[1]

Research Profile

Affiliated with Shanxi University, Yujing Yang has developed a focused research portfolio in low-carbon engineering. Scopus records indicate seven indexed publications, forty-nine citations, and an h-index of four, demonstrating growing scholarly recognition within engineering and sustainability research communities.[1]

Research Contributions

Research contributions emphasize environmentally conscious engineering practices that support carbon reduction strategies and sustainable development objectives. The published studies enhance technical understanding while encouraging practical implementation of innovative engineering concepts, offering valuable perspectives for researchers, industry professionals, and policy-oriented sustainability initiatives.[2]

Publications

The research portfolio comprises seven Scopus-indexed publications addressing engineering sustainability and related scientific topics. These publications contribute to the dissemination of knowledge through peer-reviewed journals, supporting academic collaboration and expanding the visibility of research concerning environmentally responsible engineering solutions.[1][2]

Research Impact

Citation performance and publication quality demonstrate measurable scholarly influence within the research community. The available bibliometric indicators reflect increasing academic engagement, highlighting the relevance of Yujing Yang’s work in advancing sustainable engineering knowledge and supporting future investigations across interdisciplinary environmental research fields.[1]

Award Suitability

The Innovative Research Award recognizes individuals demonstrating originality, scientific quality, and positive research influence. Yujing Yang’s scholarly achievements, publication record, citation metrics, and dedication to sustainable engineering collectively represent characteristics commonly associated with recipients of international academic recognition programs.[3]

Conclusion

Yujing Yang’s developing academic profile reflects continued commitment to advancing low-carbon engineering research through scholarly publications and measurable research performance. The combination of scientific productivity, citation impact, and sustainability-focused contributions supports recognition within international engineering and research excellence award initiatives.[1][3]

References

  1. Elsevier. (n.d.). Scopus Author Details: Yujing Yang, Author ID 55946229700. Scopus.

    https://www.scopus.com/authid/detail.uri?authorId=55946229700

  2. Yang, Y., Yang, X., Shi, Y., Pululu Jordan, B., Wang, S., Cao, X., & Zhang, D. (2026). Research on the carbon emissions and costs between prefabricated and traditional cast in situ buildings based on BIM. Sustainability, 18(12), 6174.

    https://www.mdpi.com/2071-1050/18/12/6174

  3. Architecture Engineers Awards. (n.d.). International Award Programme.https://architectureengineers.com/

William Braham | Climate-Responsive Architecture | Innovative Research Award

Prof. Dr. William Braham | Climate-Responsive Architecture | Innovative Research Award

Professor |  University of Pennsylvania | United States

William W. Braham is a distinguished scholar at the University of Pennsylvania’s Stuart Weitzman School of Design, specializing in environmental building design, energy systems, and climate-responsive architecture. He has authored 63 publications, 1,106 citations and an h-index of 13, reflecting sustained academic impact. His research integrates bioclimatic design, HVAC performance analysis, and carbon footprint assessment, addressing the global climate emergency through innovative design strategies. With extensive collaboration across 69 co-authors, his work bridges academia and practice. Braham’s contributions significantly influence sustainable architecture, advancing energy-efficient built environments and promoting low-carbon solutions with broad societal and environmental benefits.

Citation Metrics (Scopus)

1106
800
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0

Citations

1,106

Documents

63

h-index

13

Citations

Documents

h-index

View Scopus Profile
View Google Scholar Profile

Featured Publications

Yao Lu | Energy-Efficient Architecture | Best Researcher Award

Assoc. Prof. Dr. Yao Lu | Energy-Efficient Architecture | Best Researcher Award

Associate Reseacher at Beijing Institute of Nanoenergy and Nanosystems, China

Dr. Yao Lu is an accomplished researcher specializing in smart batteries, lithium-ion batteries, and flexible sensors. He earned his Ph.D. from the University of Science and Technology Beijing, where he trained in advanced materials and physics at the Beijing Key Laboratory for Magneto-Photoelectrical Composite and Interface Science. He later joined Tsinghua University as a research fellow at the State Key Laboratory of Automotive Safety and Energy, where he advanced research on energy storage and battery safety. Currently, Dr. Lu serves as an Associate Researcher at the Beijing Institute of Nanoenergy and Nanosystems, Chinese Academy of Sciences. His research emphasizes developing safe, long-life, and energy-efficient battery systems by integrating flexible sensor technologies. With over 25 peer-reviewed publications in leading journals, he has made impactful contributions to both academic science and practical energy applications. Dr. Lu is recognized as a promising researcher shaping the future of sustainable energy storage.

Professional Profile

ORCID

Education

Dr. Yao Lu completed his doctoral studies at the University of Science and Technology Beijing (USTB), where he conducted research at the Beijing Key Laboratory for Magneto-Photoelectrical Composite and Interface Science. His Ph.D. work focused on advanced physics, nanomaterials, and energy systems, laying the foundation for his later work in smart batteries and flexible sensors. At USTB, he gained expertise in electrochemical energy storage mechanisms and safety analysis of high-performance batteries. Following his doctoral training, Dr. Lu pursued additional research opportunities at Tsinghua University, one of China’s most prestigious institutions, where he worked on automotive safety and energy technologies. These academic experiences provided him with a strong interdisciplinary background combining physics, materials science, electrochemistry, and engineering. This broad training equipped him to tackle the pressing challenges in next-generation energy storage technologies, particularly in developing safe, intelligent, and energy-efficient battery systems suitable for electric vehicles and renewable energy applications.

Research Focus 

Dr. Yao Lu’s research focuses on the intersection of energy storage technology, sensor integration, and sustainability. His primary work explores smart lithium-ion batteries enhanced with flexible and implantable sensors that improve safety, performance, and life cycle management. He investigates critical challenges in battery technology, including thermal runaway mechanisms, lithium dendrite suppression, and rapid charging solutions. By combining materials engineering, electrochemical analysis, and sensor fusion techniques, his work aims to create next-generation batteries that are both safe and efficient. Additionally, Dr. Lu contributes to research on zinc-ion batteries and sodium-ion batteries, offering sustainable alternatives to traditional lithium-ion systems. His studies also incorporate AI-enabled battery management systems, providing intelligent monitoring and predictive maintenance capabilities for electric vehicles and large-scale energy storage. Overall, his research represents a forward-looking approach to clean energy innovation, addressing global needs for safer, more reliable, and environmentally responsible power storage solutions.

Publication Top Notes

Title: Zinc-ion batteries: pioneering the future of sustainable energy storage through advanced materials and mechanisms
Authors: Zixuan Chen, Liang Zhang, Tianyu Yu, Huancheng Yang, Yao Lu, Xiaodan Wang, Rui Li, Zonglun Ye, Yue Wang, Pengwei Li et al.
Summary: This article explores zinc-ion batteries as sustainable alternatives to lithium-ion systems. It provides mechanistic insights and highlights material strategies for performance enhancement, opening pathways for environmentally friendly storage solutions.

Title: Manipulation of lithium dendrites based on electric field relaxation enabling safe and long-life lithium-ion batteries
Authors: Xuebing Han, Shuoyuan Mao, Yu Wang, Yao Lu, Depeng Wang, Yukun Sun, Yuejiu Zheng, Xuning Feng, Languang Lu, Jianfeng Hua et al.
Summary: This study addresses lithium dendrite formation, a critical safety issue. The team demonstrated how electric field relaxation strategies can suppress dendrites, prolonging battery life and improving reliability.

Title: AI enabled fast charging of lithium-ion batteries of electric vehicles during their life cycle: review, challenges and perspectives
Authors: Daoming Sun, Dongxu Guo, Yufang Lu, Jiali Chen, Yao Lu, Xuebing Han, Xuning Feng, Languang Lu, Hewu Wang, Minggao Ouyang
Summary: A comprehensive review highlighting AI-driven methods for safe fast charging. The paper identifies challenges and future directions for integrating AI with EV battery management.

Title: Early warning for thermal runaway in lithium-ion batteries during various charging rates: Insights from expansion force analysis
Authors: Kuijie Li, Chen Li, Xuebing Han, Xin Gao, Yao Lu, Depeng Wang, Weixiong Wu, Yuan-cheng Cao, et al.
Summary: This work introduces expansion force analysis as a diagnostic method for predicting thermal runaway, contributing to improved safety monitoring in Li-ion batteries.

Title: In situ evaluation and manipulation of lithium plating morphology enabling safe and long-life lithium-ion batteries
Authors: Shuoyuan Mao, Yu Wang, Yao Lu, Xuebing Han, Yuejiu Zheng, Xuning Feng, Xinqi Ren, Languang Lu, Minggao Ouyang
Summary: The study reports advanced in situ techniques to monitor and control lithium plating, enhancing battery safety and durability.

Title: Smart batteries enabled by implanted flexible sensors
Authors: Yao Lu, Xiaodan Wang, Shuoyuan Mao, Depeng Wang, Daoming Sun, Yukun Sun, Anyu Su, Chenzi Zhao, Xuebing Han, Kuijie Li et al.
Summary: This article highlights how flexible sensors implanted within batteries can revolutionize energy storage by enabling real-time state monitoring and improved safety performance.

Conclusion

Dr. Yao Lu is an outstanding candidate for a Best Researcher Award. His innovative work on smart, safe, and sustainable battery technologies positions him at the forefront of energy materials research. With strong publication achievements, impactful collaborations, and recognition through competitive grants, he demonstrates the qualities of a researcher whose contributions will continue to shape the future of energy storage and flexible sensing technologies.