- use CAD software
- computer programming
- industrial research and development
- technical drawings
- project management
- define technical requirements
- Marathi
- scientific research methodology
- perform scientific research
- collect samples for analysis
- collect samples
- interpret technical requirements
- engineering principles
- engineering processes
- Fuel Cells
- Experience using LabVIEW
- Microsoft Word
- supervise laboratory operations
- use technical drawing software
- Microsoft Office
- OriginPro Software
- Proton Exchange Membrane (PEM)
- CAD Solidworks basic
- understand spoken English
- write English
- interact verbally in English
- understand written English
- manage research and development projects
- perform project management
- perform laboratory investigations
- manage staff
- discuss research proposals
- execute feasibility study
- Organizational and planning skills
- Team-work oriented
- manage engineering project
- apply safety procedures in laboratory
- develop scientific research protocols
Muralidhar Chourashiya
- Senior R&D Leader and Materials Scientist with 18+ years of international experience in energy materials, electrochemical engineering and hydrogen technologies across leading research and industrial environments. Expertise in translating fundamental research into device innovation, advanced experimentation and scalable R&D capabilities.
- Proven ability to shape research strategy, experimental roadmaps and multidisciplinary programmes spanning advanced materials synthesis, PEM electrolysis, fuel cells, electrocatalysis and materials degradation.
- Strong focus on laboratory automation, high-throughput experimentation and reproducible, data-centric workflows, with a clear foundation for self-driving laboratory and AI-enabled research.
- Experienced in leading multidisciplinary teams, mentoring researchers, establishing advanced laboratory infrastructure and building international collaborations, while maintaining high standards of scientific rigour, safety and quality.
- Date of birth: 01/01/1982
- Place of birth: India
- Gender: Male
- Nationality: Indian
- Mobile: (+91) 7350312725
- Email address: chourashiya@gmail.com
- Whatsapp Messenger: @chourashiya
- Website: www.chourashiya.blogspot.com
- LinkedIn: Chourashiya
- Home: Behind ITI, Dadage Plot, Chaitanyanagar, 416416 Sangli, India
Skills
Work experience
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Shell Technology Center Begalore (STCB)
- Bengluru, India
- www.shell.com
- Contact email: m.chourashiya@shell.com
- Name of unit or department: Analytical Technology
- Business or sector: Professional, scientific and technical activities
Analytical Researcher - Elemental
- Managed daily laboratory operations while enforcing stringent industrial safety and QC across elemental analysis facilities.
- Built high-throughput, autonomous strategies for generating scientifically reliable and reproducible data analysis protocols.
- Defined experimental protocol of self-driving sample preparation and reporting workflows by translating scientific questions into structured protocols, including experimental variables, decision points, and go/no-go criteria for autonomous execution.
- Spearheaded the re-deployment of automated dilution system by LABMAN® at STCB, initiating direct technical consultations with the OEM, to establish high-throughput and highly reproducible analytical testing workflows.
- Ensured data integrity & analytical rigour across global R&D projects through complex in-situ & ex-situ experimental protocols.
- Forged academic, industrial, and deep-tech partnerships, including direct collaborations with analytical instrument OEMs, to advance autonomous materials generation through workflow development, robotics, and instrument co-development.
- Established an evidence-based scientific roadmap for future materials-generation capabilities, including synthesis and sample-preparation approaches, and provided clear scientific justification for major capability developments.
- Led diverse & cross-functional collaborations to optimise experimental workflows & implement robust data analysis pipelines.
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NOMATEN CoE, National Center for Nuclear Research (NCBJ)
- Warsaw, Poland
- http://nomaten.ncbj.gov.pl/
- Contact email: muralidhar.chourashiya@ncbj.gov.pl
- Name of unit or department: NOMATEN CoE
- Business or sector: Professional, scientific and technical activities
Adjunct Professor - Specialist in Electrochemistry and Corrosion
- Architected and commissioned an advanced electrochemistry and corrosion laboratory, overseeing equipment procurement and installation. Mentored, led, and grown a multidisciplinary team of PhD students, postdocs, and technical staff.
- Bridged theoretical modelling with empirical validation by defining critical research parameters, guiding computational studies on advanced materials for energy and electronic applications.
- Directed the experimental framing of theoretical collaborations, translating complex electrochemical phenomena into robust, testable descriptors for predictive materials design.
- Built and standardized electrochemical corrosion testing protocols to evaluate material degradation and failure mechanisms.
- Coordinated international collaborations to execute in-situ degradation studies on energy materials.
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Materials Science and Engineering (MSE), Guangdong Technion (GT‑IIT)
- Shantou, China
- https://www.gtiit.edu.cn/en/
- Contact email: muralidhar.c@gtiit.edu.cn
- Name of unit or department: Materials Science and Engineering (MSE)
- Business or sector: Professional, scientific and technical activities
Research Fellow
- Led organization of Surface Engineering and Corrosion Lab, overseeing equipment procurement and installation. Mentored, graduates and technical staff. Designed and fabricated custom electrolyzer cells and experimental test rigs using SolidWorks.
- Led synthesis and performance evaluation of Ir-based PEM electrolysis catalysts for low-temperature PEM electrolyzers.
- Developed LabVIEW-based automation software to precisely control Metals Anodizing workstation and testing environments.
- Mentored graduate students and delivered courses on electrochemistry, corrosion mechanisms and finishing processes.
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SDU Chemical Engineering, IGT, University of Southern Denmark (SDU)
- Odense, Denmark
- https://www.sdu.dk/en
- Contact email: muc@kbm.sdu.dk
- Name of unit or department: SDU Chemical Engineering
- Business or sector: Professional, scientific and technical activities
Postdoc researcher
- Developed graphite & oxide-supported Pt as durable ORR catalyst for PEM-based fuel cell
- Developed XRF-based protocol for TF-RDE characterization for reproducible measurements.
- Developed a method to recover the Pt from the used-up fuel cell stack as a fresh Pt/C catalyst
- Automated the protocols by controlling instruments, data logging, and data analysis to report
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Heterogenous catalysis lab, Institute of Catalonia of Chemical Research (ICIQ)
- Tarragona, Spain
- https://iciq.org/
- Contact email: mchourashiya@ICIQ.ES
- Name of unit or department: Heterogenous catalysis lab
- Business or sector: Professional, scientific and technical activities
Marie Curie Postdoctoral Research Fellow
- Developed porous alumina-supported nanostructured IrO2 anode for PEM water electrolyzer
- Investigated Co3O4-based cathode for PEM-electrolyzer by in-situ XAS at ALBA synchrotron
- Designed/developed (SolidWorks) and fabricated the square/circle shaped electrolysis cell.
- Automated (LabVIEW) operation by controlling instruments, data logging, & data analysis
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Materials Science and Engineering, Chonnam National University (CNU)
- Gwangju, South Korea
- Name of unit or department: Materials Science and Engineering
- Business or sector: Professional, scientific and technical activities
Postdoc researcher
- Developed hydriding combustion synthesis technique to synthesize nano Mg hydrides.
- Designed (SolidWorks) the hybrid modular H2 storage tank with auxiliary heating/cooling.
- Designed test stand to evaluate the performance of synthesized materials and designed a tank
- Developed GeO2/C core-shell materials for electrodes of Li-ion batteries
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School of Energy Studies, Department of Physics, Shivaji University (SUK)
- Kolhapur, India
- https://shivajiuniversity.org/
- Contact email: chourashiya@gmail.com
- Name of unit or department: Physics
- Business or sector: Professional, scientific and technical activities
CSIR-Senior & DRDO-Senior/Junior research fellow
- Evaluation of Gd-doped ceria deposited on Ni-Gd doped ceria as half-cell for SOFC
- Synthesis of Gd-doped ceria thin films by spray pyrolysis, on the porous anode (Ni-GDC)
- Synthesis/characterization of porous ‘NiO-Gd doped ceria’, as SOFC anode precursor
- Optimization of Gd doping in ceria for maximum oxygen ionic conductivity
- Investigation of the synthesis of ‘Gd-doped ceria’ dense thin films by spray pyrolysis
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xEducation and training
Shivaji University
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Ph.D. in Physics - Materials for electrochemical devices (Fuel Cell Technology)
- Kolhapur, India
The Ph.D. thesis, titled "Studies on synthesis and characterizations of gadolinium doped ceria solid electrolyte," investigates the development of advanced materials for clean energy conversion, specifically focusing on Solid Oxide Fuel Cells (SOFCs). The central goal of the work is to address the high operating temperatures of traditional SOFCs—typically around 1000°C—which cause material degradation, thermal mismatch between components, and high fabrication costs.
To overcome these obstacles, the research explores lowering the operating temperature to an intermediate range of 500–800°C. This is achieved by utilizing Gadolinium Doped Ceria (GDC) as a solid electrolyte, a material that exhibits significantly higher ionic conductivity than standard yttria-stabilized zirconia (YSZ) at lower temperatures.
Fundamental Principles and Defect Chemistry
The study is grounded in the defect chemistry of the fluorite crystal structure. Ceria CeO2 naturally possesses an open fluorite structure that is stable from room temperature to its melting point. By substituting Ce4+ host ions with Gd3+ dopant ions, the material minimizes internal lattice strain while introducing oxygen vacancies to maintain charge neutrality.
These vacancies act as the primary vehicles for electrical conduction, allowing oxygen ions to migrate through the lattice via a thermally activated hopping mechanism. The thesis details how the ionic conductivity peaks at approximately 10% gadolinium doping, identifying GDC10 as the ideal candidate for intermediate-temperature applications.
Experimental Synthesis and Characterization
The experimental portion of the thesis is divided into two major phases:
- Bulk Analysis: Initially, GDC was synthesized in bulk form using a cost-effective solid-state reaction method. This allowed for the systematic optimization of processing parameters—such as sintering time and temperature—to understand their influence on the structural and electrical properties of the final ceramic.
- Thin Film Fabrication: To further reduce ohmic losses and enhance performance, the research shifted to creating thin-film electrolytes with a thickness of 10–20µm. These films were produced using the spray pyrolysis technique (SPT), a simple and scalable chemical deposition method.
The thin films were first optimized on glass substrates to understand growth mechanisms before being deposited onto porous NiO-GDC ceramic anode substrates to form a functional electrode-electrolyte interface. The thesis concludes by testing these optimized GDC structures through Open Circuit Voltage (OCV) measurements, confirming their stability and efficiency in simulated fuel cell environments.
- Level in EQF: EQF level 8
- Thesis: Studies on synthesis and characterizations of gadolinium doped ceria solid electrolyte,
Shivaji University
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M.Sc. in Solid State Physics
- Kolhapur, India
The M.Sc. dissertation, titled "Low Temperature Deposition of Tin Oxide Thin Films by SILAR Method and to Study the Effect of Indium Doping on its Electrical and Optical Properties," explores cost-effective methodologies for fabricating transparent conducting oxide (TCO) films. The central motivation of the research is to develop an inexpensive and low-temperature technique for producing thin films that have significant industrial applications, particularly as gas sensors, solar cell electrodes, and transparent heat mirrors.
To achieve this, the project utilizes the Successive Ionic Layer Adsorption and Reaction (SILAR), also referred to as the Modified Chemical Bath Deposition (M-CBD) method, to grow tin oxide SnO2 thin films on glass substrates at room temperature. This process acts as the core synthesis technique, relying on the sequential adsorption and reaction of ions at the solid-liquid interface. The films were synthesized using a precursor solution of stannous chloride complexed with EDTA, followed by rinsing in de-ionized water containing hydrogen peroxide to provide the necessary oxygen ions and prevent homogeneous precipitation. Once the baseline parameters for pure SnO2 deposition were established, the method was advanced by introducing indium sulfate to the precursor, allowing for the fabrication of indium-doped tin oxide films.
The scientific foundation of the work is rooted in solid-state physics and the surface phenomena of two-dimensional structures. The dissertation details the chemical mechanics of the deposition, explaining how SnO2 cations adsorb onto the substrate and react with SnO2 anions to form mono-layers of tin oxide. By applying semiconductor physics, the research evaluates how doping with indium modulates the material's properties. Pure SnO2 is an n-type semiconductor with high resistivity due to its wide band gap, but introducing precise amounts of indium reduces this resistivity by altering the free carrier concentration and structural defects.
Throughout the study, rigorous analytical technologies were employed to ensure the structural integrity and performance of the synthesized materials. Gravimetric weight difference analysis was used to measure film thickness, determining that a maximum thickness of 0.38 microns was achieved after 70 immersion cycles. X-ray Diffraction (XRD) confirmed the formation of a pure, tetragonal SnO2 crystal structure. Surface morphology and grain size—averaging around 100 nm—were examined using Scanning Electron Microscopy (SEM), ensuring uniform nano-scale deposition. Furthermore, optical absorption data revealed a direct transition optical band gap of 2.8 eV, while two-probe resistivity measurements quantified the electrical improvements brought on by the doping process.
Ultimately, the research successfully bridges fundamental materials science with practical industrial needs by demonstrating that increasing the indium doping percentage up to 40% significantly lowers the electrical resistivity while simultaneously increasing the optical transmittance of the films in the visible spectrum. This work presents a scalable, economically viable pathway for manufacturing high-quality TCO films for advanced optoelectronic and gas-sensing applications.
- Level in EQF: EQF level 7
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xWillingdon College (Shivaji University)
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B.Sc. in Physics
- Sangli, India
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- Final grade: 70.63
- Level in EQF: EQF level 6
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xPublications
Computational modeling of CH4 and CO2 adsorption on monolayergraphenylene: Implications for optoelectronic properties and hydrogenproduction
Dynamical Pathways for the Interaction of O2, H2O, CH4, and CO2 with α-Alumina Surfaces: Density-Functional Tight-Binding Calculations
Gram-size Pt/C catalyst synthesized using Pt compound directly recovered from an end-of-life PEM fuel cell stack
Investigation of quality and performance of Cu impregnated NiO-GDC as anode for IT-SOFCs
Solution combustion synthesized ceria or alumina supported Pt as cathode electrocatalyst for PEM fuel cells
Different enhancement mechanisms of the anodizing Al‐doped or Sn‐coupled Ti3SiC2 for the photoelectrochemical performance
Cobalt oxide-based materials as a non-PGM catalyst for HER in PEM electrolysis and in situ XAS characterization of its functional state
Accurate determination of catalyst loading on glassy carbon disk and its impact on thin-film rotating disk electrode for oxygen reduction reaction
Low-cost graphite as durable support for Pt-based cathode electrocatalysts for proton exchange membrane-based fuel cells
Solution combustion synthesis of highly dispersible and dispersed iridium oxide as an anode catalyst in PEM water electrolysis
Hydrogenation and microstructural properties of hydriding combustion synthesized MgNiC composite ball-milled with NbF5 catalyst
Electrochemical Performance of GeO2/C Core Shell-based Electrodes for Li-ion Batteries
Hydrogen storage and electrochemical properties of the Ti0.32Cr0.43-x-yV0.25FexMny (x = 0~0.055, y = 0~0.080) alloys and their composites with MmNi3.99Al0.29Mn0.3Co0.6 alloy
Electrochemical performance of NAFION coated electrodes of hydriding combustion synthesized MgNi based composite hydride
Synthesis of highly active Mg-based hydrides using hydriding combustion synthesis and NbF5 additives
Effect of the preparative parameters of hydriding combustion synthesis on the properties of Mg-Ni-C as hydrogen storage material
Hydrogen storage and electrochemical characteristics of Ti0.32Cr0.43−x V0.25Fex (x = 0 ∼ 0.08) alloys and its composites with LmNi4.1Al0.25Mn0.3Co0.65 alloy
Comparison of commercial and hydriding-combustion-synthesized Mg–hydride
Synthesis and characterization of 10%Gd doped Ceria (GDC) deposited on NiO-GDC anode grade-ceramic substrate as half-cell for SOFC
Synthesis and characterization of electrolyte-grade 10%Gd doped ceria thin film/ceramic substrate structures for solid oxide fuel cells
Fabrication of 10%Gd doped ceria (GDC)/NiO-GDC half-cell for low or intermediate temperature solid oxide fuel cells using spray pyrolysis
“Synthesis & characterization of nano-crystalline Ce1-xGdxO2-x/2 (x = 0–0.30) solid solutions
Synthesis of nanocrystalline Gd doped Ceria by combustion technique
Studies on structural, morphological and electrical properties of Ce1-xGdxO2-x/2
Synthesis and characterization of Gd0.1Ce0.9O1.95thin films by spray pyrolysis technique
“Effect of sintering temperature on structural and electrical properties of gadolinium doped ceria (Ce0.9Gd0.1O1.95)
Language skills
Mother tongue(s)
Hindi
Marathi
Other language(s)
| Listening | Reading | Spoken interaction | Spoken production | Writing | ||
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English |
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Hobbies and interests
Technology Tinkering and Automation
My professional interest in lab automation extends to my personal time. I enjoy exploring new programming tools, electronics, and software platforms to automate everyday tasks and streamline workflows.
Cultural Exploration and Travel
Having lived and worked across diverse regions in Europe and Asia, I have developed a strong appreciation for cross-cultural exchange. I love traveling, adapting to new environments, and learning from different cultural perspectives.
STEM Education and Mentoring
Dedicated to sharing knowledge and fostering the next generation of scientists. I actively enjoy mentoring students, designing technical training materials, and encouraging young learners to explore physics and materials science.