Turkey
Assoc Prof Dr. Kader-Dağcı Kıranşan-Solar Steam Generator-Women Researcher Award
Atatürk Üniversity-Turkey
Author Profile
Early Academic Pursuits
Assoc Prof Dr. Kader Dağcı Kiranşan's academic journey began with her undergraduate studies in Chemical Engineering at Atatürk University. She continued her education with a focus on Analytical Chemistry, completing her master's degree in 2010 and her doctorate in 2015. Her doctoral thesis, supervised by Dr. Murat Alanyalıoğlu, involved the preparation, characterization, and application of films and electrodes in analytical chemistry.
Professional Endeavors
After completing her doctorate, Dr. Dağcı Kiranşan pursued an academic career at Atatürk University, joining the Chemistry Department. Over the years, she has taken on various roles, progressing from a Research Assistant to her current position as an Associate Professor.
The Solar Steam Generator is an innovative technology designed to harness solar energy for efficient steam production. Developed by Kader Dağcı Kıranşan, this groundbreaking solution addresses the growing need for sustainable and eco-friendly power generation.
Contributions and Research Focus On solar steam generator
Assoc Prof Dr. Dağcı Kiranşan's research focuses on the development and application of novel materials for electrochemical sensors and energy storage devices. She has been involved in numerous research projects, contributing to the fields of nanotechnology, electrochemistry, and materials science. Her work includes the synthesis of graphene-based materials, metal-organic frameworks (MOFs), and various nanocomposites for applications such as supercapacitors and sensors.
At its core, the system utilizes solar thermal energy to heat water and produce high-quality steam. This process is not only environmentally friendly but also highly efficient, making it a promising alternative for various applications such as power generation, industrial processes, and more.
Accolades and Recognition
Her contributions to the field have been recognized through awards and grants, including the TÜBİTAK 3001 Project Award in 2020. She has also received scholarships and grants throughout her academic journey, such as the TÜBİTAK-BİDEB 2219-Yurt Dışı Doktora Sonrası Araştırma Burs Programı Bursiyeri in 2016.
One of the key advantages of the Solar Steam Generator is its ability to reduce carbon footprint and dependency on traditional energy sources. By harnessing the abundant and clean energy from the sun, Kader Dağcı Kıranşan's innovation contributes to mitigating climate change and promoting a greener future.
Impact and Influence
Assoc Prof Dr. Dağcı Kiranşan has made a significant impact through her research, as evidenced by the publication of numerous articles in international peer-reviewed journals. Her work on flexible and free-standing electrodes, nanocomposites, and electrochemical sensors has contributed to the advancement of analytical chemistry and materials science.
The technology has garnered significant recognition, including the prestigious Women Researcher Award in 2024. Kader Dağcı Kıranşan's leadership in advancing sustainable energy solutions, particularly in the realm of solar steam generation, has positioned her as a trailblazer in the field.
Legacy and Future Contributions
Her legacy includes the supervision of master's and doctoral theses, where she has guided students in their research endeavors. Dr. Dağcı Kiranşan's work has laid the foundation for future research in the development of innovative materials for energy storage and sensing applications. Her continued involvement in research projects and academic activities suggests a promising future in contributing to the scientific community.
In summary, Dr. Kader Dağcı Kiranşan's academic journey, research contributions, and recognition in the field of analytical chemistry and materials science reflect a dedicated and impactful career. Her work has not only advanced scientific knowledge but has also inspired the next generation of researchers in her field.
Notable Publication
- An effective material for solar steam generation applications: Gradient graphene sponge
- Design and synthesis of a MnCo-MOF modified flexible 3D graphene sponge electrode for an asymmetric supercapacitor with high power and energy density
- Three-dimensional FeNiP decorated graphene sponge: A novel flexible electrode for high-performance asymmetric supercapacitor
- Three-Dimensional ZnCo-MOF Modified Graphene Sponge: Flexible Electrode Material for Symmetric Supercapacitor
- Electrochemical simultaneous sensing of melatonin and ascorbic acid at a novel flexible B-RGO composite paper electrode