Open Access
Issue
E3S Web Conf.
Volume 691, 2026
The 10th International Conference on Biomass and Bioenergy: Sustainable Solution for A Greener Future: Harnessing Biomass and Bioenergy (ICBB 2025)
Article Number 02002
Number of page(s) 10
Section Bio-chemicals and Bio-materials; Bio-energy; AI/IT Technologies in Biomass/Bioenergy/Agriculture
DOI https://doi.org/10.1051/e3sconf/202669102002
Published online 22 January 2026
  1. Behal, J., M.S. Maru, R. Katwal, D. Pathak, and V. Kumar, Ultrasonic assisted green synthesis approach for nanotechnological materials. J. Alloys Compd. Comm., 2024. 3: p. 100013. [Google Scholar]
  2. Nouri, A., M. Tavakkoli Yaraki, A. Lajevardi, Z. Rezaei, M. Ghorbanpour, and M. Tanzifi, Ultrasonic-assisted green synthesis of silver nanoparticles using Mentha aquatica leaf extract for enhanced antibacterial properties and catalytic activity. Colloid Interfac. Sci., 2020. 35: p. 100252. [Google Scholar]
  3. Yulia, F., A. Zulys, B.B. Saha, T. Mabuchi, W. Gonçalves, and Nasruddin, Bio-metal-organic framework-based cobalt glutamate for CO2/N2 separation: Experimental and multi-objective optimization with a neural network. Process Saf. Environ. Prot., 2022. 162: p. 998-1014. [Google Scholar]
  4. Samanta, A., A. Zhao, G.K.H. Shimizu, P. Sarkar, and R. Gupta, Post-Combustion CO2 Capture Using Solid Sorbents: A Review. Industrial & Engineering Chemistry Research, 2012. 51(4): p. 1438-1463. [Google Scholar]
  5. Ling, J., A. Ntiamoah, P. Xiao, P.A. Webley, and Y.J.C.E.J. Zhai, Effects of feed gas concentration, temperature and process parameters on vacuum swing adsorption performance for CO2 capture. 2015. 265: p. 47-57. [Google Scholar]
  6. Dias, R.O.M., M.J. Regufe, A.A. Pereira, A.F.P. Ferreira, A.E. Rodrigues, and A.M. Ribeiro, Methane upgrading on pelletised Maxsorb activated carbon by gas-phase simulated moving bed. Adsorption, 2024. 31(1): p. 7. [Google Scholar]
  7. Zardari, Z.H., D.F.J.E. Mohshim, Technology, and A.S. Research, Temperature Dependence Evaluation of CO2 Adsorption on Eagle Ford Shale using Isothermal Models: A Comparative Study. ETASR., 2025. 15(1): p. 19959-19965. [Google Scholar]
  8. Han, S.-H., Y. Dong, and G.-Y. Jin, Study on heat and mass transfer mechanism of unsaturated porous media under CW laser irradiation: with and without carrier gas. J Non-Equilib Thermody., 2025. [Google Scholar]
  9. Farzana, N., S. Nadiri, S. Agarwal, D. Zhu, Z. Qu, R. Fernandes, and B. Shu, Experimental and kinetic modeling study on refrigerants: A comparative case study on methane and difluoromethane. Meas. Sens., 2025: p. 101719. [Google Scholar]
  10. Bian, X., Z. Du, Y. Tang, and J. Du, Measurement and correlation of compressibility factor of high CO2-content natural gas. Journal of Petroleum Science and Engineering, 2012. 82-83: p. 38-43. [Google Scholar]
  11. Panpranot, J., S. Kaewkun, P. Praserthdam, and J.G. Goodwin, Effect of Cobalt Precursors on the Dispersion of Cobalt on MCM-41. Catal. Lett., 2003. 91(1): p. 95-102. [Google Scholar]
  12. Nakahama, M., J. Reboul, K. Yoshida, S. Furukawa, and S. Kitagawa, l-Glutamic acid release from a series of aluminum-based isoreticular porous coordination polymers. J. Mater. Chem. B., 2015. 3(20): p. 4205-4212. [Google Scholar]
  13. Bejarbaneh, M., Z. Moradi-Shoeili, A. Jalali, and A. Salehzadeh, Synthesis of Cobalt Hydroxide Nano-flakes Functionalized with Glutamic Acid and Conjugated with Thiosemicarbazide for Anticancer Activities Against Human Breast Cancer Cells. Biol. Trace Elem. Res., 2020. 198(1): p. 98-108. [Google Scholar]
  14. Zhao, J., X. Zhang, J. Wang, X. Jia, H. Zhang, F. Su, C. Kong, Z. Yang, T. Wang, and H. Zhu, One-pot solvothermal synthesis of highly dispersed, morphology- and crystal structure-tunable copper-manganese oxide for catalytic combustion of toluene at low temperatures. Mater. Today Commun., 2023. 36: p. 106947. [Google Scholar]
  15. Li, T., J.E. Sullivan, and N.L. Rosi, Design and preparation of a core-shell metal-organic framework for selective CO2 capture. JACS., 2013. 135(27): p. 9984-9987. [Google Scholar]
  16. Nugent, P.S., V.L. Rhodus, T. Pham, K. Forrest, L. Wojtas, B. Space, and M.J. Zaworotko, A robust molecular porous material with high CO2 uptake and selectivity. JACS., 2013. 135(30): p. 10950-10953. [Google Scholar]
  17. Yulia, F., M. Ridha, A. Singgih, A. Wirayuda, E. Djubaedah, Tarno, N.S. Sambudi, S. Hastuty, and Nasruddin, Ultrasonic-assisted synthesis of Bio-MOF-based cobalt-glutamic acid for CO2/CH4 adsorption: Experimental and isotherm modeling. Gas Science and Engineering, 2026. 145: p. 205762. [Google Scholar]
  18. Küçükay, D., Investigation of CO2 adsorption performance of spinel oxide & metal-organic structures. [Google Scholar]
  19. Zaghloul, M.I., M.F. Elkady, M.E. El-Khouly, and G.G. Mohamed, Tailored Zr bio-MOF structures for CO2 adsorption: A comparative study of binderless pelletization and chitosan-based extrusion. International Journal of Biological Macromolecules, 2025. 318: p. 145295. [Google Scholar]
  20. Ahmad, A., M. Nazar, M. Ismail, I. Abdulazeez, M.A. Bustam, and O.C.S. Al Hamouz, The role of carbon nanotubes and graphene oxide on the performance of metal-organic frameworks for CO2 capture. Physica B: Condensed Matter, 2025. 715: p. 417551. [Google Scholar]
  21. Ramirez Isunza, X.M., Evaluating the Effect of Composition, Structure and Functionality on Atmospheric CO2 Adsorption in Porous Solid Sorbents. 2025. [Google Scholar]
  22. Pereira, D., M. Sardo, R. Vieira, I. Marín-Montesinos, and L.J.I.C. Mafra, Enhancing CO2 Capture Via Fast Microwave-Assisted Synthesis of the CALF-20 Metal–Organic Framework. 2025. 64(7): p. 3302-3310. [Google Scholar]

Current usage metrics show cumulative count of Article Views (full-text article views including HTML views, PDF and ePub downloads, according to the available data) and Abstracts Views on Vision4Press platform.

Data correspond to usage on the plateform after 2015. The current usage metrics is available 48-96 hours after online publication and is updated daily on week days.

Initial download of the metrics may take a while.