Life Cycle Assessment (LCA) Services
Scientific Assessment Β· Eco-Friendly Β· Publication Supports
Service Overview
LCA systematically evaluates environmental impacts throughout a product's entire lifecycle - from raw materials to disposal. With years of hydrogen technology expertise, eChemStore delivers professional, accurate LCA services.
Service Value
- Impact Quantification: Precise carbon footprint & environmental metrics
- Technology Optimization: Identify hotspots, guide improvements
- Compliance Support: Meet regulations & certification needs
- Proven Expertise: 90+ research clients served
Service Process
Goal & Scope Definition
Define objectives, functional units, boundaries & impact categories
Inventory Analysis
Quantify material & energy inputs/outputs
Impact Assessment
Calculate characterization & normalization results
Result Interpretation
Analyze results, identify hotspots & provide recommendations
Assessment Indicators
Key environmental impact metrics
Climate Impact
GHG emissions
Acidification
Acid emissions
Eutrophication
Nutrient discharge
Ozone Depletion
ODS emissions
Fossil Fuel Use
Non-renewable energy
Water Consumption
Freshwater usage
Land Use
Land occupation and conversion
And More
Additional assessment indicators
Deliverables
LCA Report
Comprehensive report with methodology, data sources & analysis
Data Inventory
Complete lifecycle data for analysis & comparison
Impact Results
Quantified results with characterization, normalization & weighting
Improvement Recommendations
Optimization solutions based on assessment findings
Sensitivity Analysis
Key parameter analysis & uncertainty assessment
Visual Charts
Intuitive displays for easy understanding & communication
Service Features
Professional, Scientific & Reliable LCA Services
Standard Methodology
ISO 14040/14044 compliant for scientific, comparable results
Expert Database
Authoritative data covering new energy, materials & more
Custom Analysis
Tailored impact & sensitivity analysis for specific needs
Visual Reports
Chart-rich reports for easy understanding & decision-making
Application Areas
Wide industry & scenario coverage
Core Applications
LCA for water electrolysis, fuel cells, batteries & more
Impact assessment for recycling, degradation & synthesis
LCA support for new energy, materials & beyond
Product Development Support
Identify impact hotspots, support eco-friendly material selection
Optimize production to reduce environmental impact
Assess environmental performance across chains
Policy & Certification
Support eco-label applications
Carbon footprint calculation & certification support
Support government & enterprise green purchasing
Service Clients
We've supported 90+ academic users with techno-economic & lifecycle assessments. Related research published in top journals: Nature Synthesis, Nature Catalysis, JACS, AM, Angew, Nature Communications. Fields include COβ reduction, plastic synthesis/degradation, synthetic biology, carbon capture, chemical production, SCR, wastewater treatment & more.
Peking University
Tsinghua University
University of Science and Technology of China
Zhejiang University
Nanjing University
Sichuan University
Xiamen University
National University of Singapore
Supported Publications
[Membrane Separation]Yan, R., Sun, M., Hu, H. et al. Enhanced Antibiotics Sieving by Exfoliated TiS2 Membranes via Surface Functionalization and Passivation. Nano-Micro Lett. 19, 34 (2027). https://doi.org/10.1007/s40820-026-02315-4
[Precious Metal Extraction]Mei, L., Sun, M., Yang, R. et al. High efficiency gold extraction by 2D metallic 1T/1Tβ² phase transition metal dichalcogenides. Nat Commun (2026). https://doi.org/10.1038/s41467-026-75803-1
[Plastic Upcycling]Zhao, J., Yang, J., Wang, D. et al. ~100% upcycling of chlorinated/fluorinated plastic mixtures to H2 and nanotubes over FeNi/Ni/C by microwave catalysis. Nat Commun 17, 6481 (2026). https://doi.org/10.1038/s41467-026-73141-w
[Water Electrolysis]Zhang, W., Wang, T., Zhuo, Y. et al. Anode-pressurized water electrolysis with modulated anion exchange membrane architecture. Nat Commun 17, 6433 (2026). https://doi.org/10.1038/s41467-026-72950-3
[Plastic Upcycling]G. Ma, L. Cai, Y. Li, et al. Dynamic Material Reconstruction Dominates Stable and Efficient Upgrading of Polyester Plastics in Electrolyzer Stacks With High Voltage Fluctuations. Advanced Materials (2026): e74298. https://doi.org/10.1002/adma.74298
[H2O2 Electrosynthesis]Gu, Y., Tan, Y., Tan, H. et al. Industrial electrosynthesis of hydrogen peroxide over p-block metal single sites. Nat. Synth 4, 614β621 (2025). https://doi.org/10.1038/s44160-024-00722-2
[Biomass Electrocatalysis]Ren, Y., Kong, W., Li, Y. et al. Selective electrooxidation of 5-hydroxymethylfurfural at pilot scale by engineering a solid polymer electrolyte reactor. Nat Catal (2025). https://doi.org/10.1038/s41929-025-01374-x
[SCR Denitrification]Chen, W., Bao, M., Meng, F. et al. Designer topological-single-atom catalysts with site-specific selectivity. Nat Commun 16, 574 (2025). https://doi.org/10.1038/s41467-025-55838-6
[CO Electroreduction]L.Zhang, J.Feng, R.Wang, et al. Switching CO-to-Acetate Electroreduction on Cu Atomic Ensembles. Journal of the American Chemical Society 2025 147 (1), 713-724 https://doi.org/10.1021/jacs.4c13197
[Plastic Upcycling]T. Fang, W. Jiang, T. Zheng, X. Yao, W. Zhu, Catalyst- and Solvent-Free Upcycling of Poly(Ethylene Terephthalate) Waste to Biodegradable Plastics. Adv. Mater. 2024, 36, 2403728. https://doi.org/10.1002/adma.202403728
[Plastic Upcycling]M. Song, Y. Wu, Z. Zhao, M. Zheng, C. Wang, J. Lu, Corrosion Engineering of Part-Per-Million Single Atom Pt1/Ni(OH)2 Electrocatalyst for PET Upcycling at Ampere-Level Current Density. Adv. Mater. 2024, 36, 2403234. https://doi.org/10.1002/adma.202403234
[CO2 Mineralization]Y. Wang, T. Liu, C. Cheng, Y. et al. High-efficiency metal-free CO2 mineralization battery using organic redox catalysts, Chemical Engineering Journal, 2024, 496, 154008 https://doi.org/10.1016/j.cej.2024.154008
[Ammonia Electrosynthesis]X. Guo, Z. Wang, Y. Gao, et al. Highly stable Perovskite Oxides for Electrocatalytic AcidicNOx-Reduction streamlining Ammonia synthesis from Air. Angew. Chem. Int. Ed. 2024, 63, e202410517. https://doi.org/10.1002/anie.202410517
[CO2 Electrolysis]C. Zhang, X. Hao, J. Wang, et al. Concentrated Formic Acid from CO2 Electrolysis for Directly Driving Fuel Cell. Xiong, Angew. Chem. Int. Ed. 2024, 63, e202317628. https://doi.org/10.1002/anie.202317628