Publications
  1. G. Yergaliuly et al., Substrate-engineered microstructural evolution and nitric oxide sensing performance of ZnO nanofilms deposited by RF magnetron sputtering, Vacuum, 254, 2026, 115746. 10.1016/j.vacuum.2026.115746.
  2. A. Belgibayeva et al., Review on hierarchical fibers from plastic waste via coaxial electrospinning and thermal transformation: A methodological framework for energy storage applications, Chemical Engineering Journal Advances, 28, 2026, 101436. 10.1016/j.ceja.2026.101436
  3. G.E. Fynn et al., Surface-engineered N, S-functionalized porous carbon: structure-activity relationships in xylose dehydration to furfural, Applied Surface Science, 743, 2026, 167297. 10.1016/j.apsusc.2026.167297.
  4. A. Kanet et al., Flexible PEDOT:PSS-based sensor for CH₄ detection via a facile and scalable approach, Sensors and Actuators A: Physical, 408, 2026, 118016. 10.1016/j.sna.2026.118016.
  5. T. Kerimkul et al., Semi-solid lithium-sulfur cell with PVA-based gel polymer electrolyte, Journal of Power Sources, 688, 2026, 240505. 10.1016/j.jpowsour.2026.240505.
  6. S. Tugelbay et al., Scalable solvent-free exfoliation of g-C₃N₄ for dual-function photocatalysis: Water purification and hydrogen evolution under visible light, Next Materials, 13, 2026, 102780. 10.1016/j.nxmate.2026.102780.
  7. D. Bekeshov et al., When TiO₂ nanospheres couple with Ni nanoparticles: A freestanding strategy for regulating polysulfide shuttling in Li–S batteries, Materials Today Energy, 61, 2026, 102391. 10.1016/j.mtener.2026.102391.
  8. T. Tuleuov et al., Nickel and titania Co-decorated carbon nanofibers: a novel scaffold for high-loading lithium polysulfide catholytes, Journal of Power Sources, 687, 2026, 240543. 10.1016/j.jpowsour.2026.240543.
  9. A. Dautov et al., Green synthesis of graphene oxide via electrochemical exfoliation and its characterization, Results in Chemistry, 29, 2026, 103746. 10.1016/j.rechem.2026.103746.
  10. M. Karibayev et al., Deep eutectic solvents in the analytical extraction, detection and quantification of IARC-classified food carcinogens: performance, mechanisms, and future perspectives, Talanta, 307, 2026, 129800. 10.1016/j.talanta.2026.129800.
  11. B. Soltabayev et al., Two-dimensional ZnO nanosheets synthesized by the SILAR method: Structural, optoelectronic, and gas-sensing properties, Colloids and Surfaces A: Physicochemical and Engineering Aspects, 743, 2026, 140528. 10.1016/j.colsurfa.2026.140528.
  12. A. Kanet et al., Carbon based composite nanostructures for ammonia sensing: comprehensive review on mechanisms, design principles, and emerging strategies, Materials & Design, 268, 2026, 116495. 10.1016/j.matdes.2026.116495.
  13. S. Tugelbay et al., AgCl based photocatalysts for visible-light water treatment: Plasmonic regulation, chlorine radical chemistry, and structure performance relationships, Journal of Environmental Chemical Engineering, 14(4), 2026, 123306. 10.1016/j.jece.2026.123306.
  14. J. Akinrele et al., Beyond TOC decline: Compartment-resolved carbon mass balance for mineralization assessment in heterogeneous persulfate oxidation of doxycycline, Chemical Engineering Journal Advances, 27, 2026, 101361. 10.1016/j.ceja.2026.101361.
  15. O. Mukhan et al., A Nickel-Assisted Catalytic Graphitization of PET Waste Into High-Performance Carbon Anodes for Lithium-Ion Batteries, Advanced Energy and Sustainability Research, 7(8), 2026, e70246. 10.1002/aesr.70246.
  16. D. Rakhman et al., Surface engineering of current collector for stable high-mass-loading cathodes in aqueous Zn–LiFePO₄ batteries, Journal of Power Sources, 682, 2026, 240355. 10.1016/j.jpowsour.2026.240355.
  17. N. Almas et al., CdS-Based Photocatalysts for Antimicrobial Applications: From Quantum Dots to Z-Scheme Heterojunctions—Mechanisms, Challenges, and Future Perspectives, Molecules, 31(15), 2026, 2626. 10.3390/molecules31152626.
  18. Y. Liu et al., An Environmental-Friendly Amphiphilic Molecule for Simultaneously Improving CO₂ Geological Storage and Utilization, Environmental Science & Technology, 60(28), 2026, 19807–19827. 10.1021/acs.est.5c14590.
  19. E. Siaw et al., Titanium dioxide nanotubes modified with nickel oxide and nickel nanoparticles for improved polysulfide anchoring and redox kinetics in lithium–sulfur batteries, Nanoscale Advances, 8(14), 2026, 4139–4158. 10.1039/d6na00263c.
  20. P. Zhanbirbayeva et al., Enhanced Visible-Light Photocatalytic Activity of TiO₂ via LaFeO₃ Perovskite Modification, Nanomaterials, 16(14), 2026, 880. 10.3390/nano16140880.
  21. A. Alaskhanov et al., Synergistic surface decoration of TiO₂ HNSs with metal/oxide nanoparticles for promoting kinetics in Li–S batteries, Journal of Energy Storage, 162, 2026, 121935. 10.1016/j.est.2026.121935.
  22. S. Zhumagazy et al., Continuous-flow functionalization of furfural: synthetic strategies for furan-containing value-added chemicals, Organic Chemistry Frontiers, 2026. 10.1039/d6qo00542j.
  23. S. Cui et al., Synergistic Ti/F co-doping for enhanced electrochemical performance of LiNi₀.₅Mn₁.₅O₄ cathodes via Ti³⁺/Ti⁴⁺ redox and structural stabilization, Journal of Materials Chemistry A, 2026. 10.1039/d6ta02127a.
  24. A. Sarsengaliyeva et al., PET Waste-Derived Hard Carbon with Superior Rate Capability for Sodium-Ion Battery Anodes, Materials, 19(12), 2026, 2457. 10.3390/ma19122457.
  25. A. Kazymbetova et al., Hybrid carbon matrices enable the suppression of polysulfide shuttle effect in Li–S batteries, Scientific Reports, 16, 2026, 26102. 10.1038/s41598-026-56662-8.
  26. L. Rakhymbay et al., Optimizing ZnSO₄–Li₂SO₄ Electrolytes for Stable Aqueous Zinc-Ion Batteries, Herald of the Kazakh-British Technical University, 23(2), 2026, 392–400. 10.55452/1998-6688-2026-23-2-392-400.
  27. Z. Kozhirbayev et al., Enhancing Personalised Learning with Graph-Based Ensemble Prediction and Skill Cluster Mapping for Student Knowledge Completeness, Computers, 15(6), 2026, 346. 10.3390/computers15060346.
  28. Y. Zhao et al., Three-dimensional macroporous zinc-based metal–organic framework as a sulfur reservoir for high-performance Lithium–Sulfur batteries, Journal of Power Sources, 676, 2026, 239841. 10.1016/j.jpowsour.2026.239841.
  29. E. Nwaogu et al., Mechanochemical-Assisted HF-Free Etching of V₂AlC for Tuning Interlayer Spacing and Electrochemical Behavior of V₂CTx MXene Anodes, ChemElectroChem, 13(10), 2026, e70230. 10.1002/celc.70230.
  30. D. Yeskozha et al., Phosphorus-doped hard carbon derived from waste PET bottles as a superior anode material for lithium-ion batteries, Journal of Materials Chemistry A, 14, 2026, 16383–16397. 10.1039/D6TA00836D.
  31. Y. Sagidolda et al., The effect of Ti, W, Ag and TiO₂ particles on the structural and optical properties of porous silicon obtained in various electrolytes, Scientific Reports, 16, 2026, 16820. 10.1038/s41598-026-48215-w.
  32. Z. Shalabayev et al., A novel strategy for the fabrication of semi-transparent all-in-one lithium-ion battery, Journal of Energy Storage, 154, Part A, 2026, 121302. 10.1016/j.est.2026.121302.
  33. K. Akhmetova et al., Review on the dimensionality (0D–3D) of NCM cathode morphologies: Impact on electrochemical performance in lithium-ion batteries, Journal of Energy Storage, 154, Part B, 2026, 121289. 10.1016/j.est.2026.121289.
  34. T. Shomenov et al., Boron-doped, lithium-decorated graphene layer for hydrogen storage technologies, International Journal of Hydrogen Energy, 223, 2026, 154314. 10.1016/j.ijhydene.2026.154314.
  35. Z. Kozhirbayev, An Empirical Comparison of Cascade and Direct End-to-End Speech Translation for Low-Resource Language Pair, Computers, 15(4), 2026, 222. 10.3390/computers15040222.
  36. G. Alimbetova et al., Electrochemical behaviour of Na-ion and Na-S batteries under external magnetic fields, Scientific Reports, 16, 2026, 10806. 10.1038/s41598-026-45275-w.
  37. N. Baikalov et al., Beyond Metal Compounds: The Exclusive Role of Metallic Nanoparticles in Lithium–Sulfur Batteries, Small Structures, 7(3), 2026, e202500871. 10.1002/sstr.202500871.
  38. B. Myrzakhmetov et al., Density functional theory insights into decorated, doped, and defective graphene as a model system for understanding hydrogen storage in carbon materials, Carbon Letters, 36, 2026, 579–616. 10.1007/s42823-025-01021-2.
  39. A. Tangirbergen et al., Corrigendum to “Real-time detection of potato spoilage by gas sensor array coupled with microbiological analysis”, LWT, 243, 2026, 119168. 10.1016/j.lwt.2026.119168.
  40. I. Mukushev et al., Modified Pechini-derived Na₃V₂(PO₄)₃/C with superior low-temperature performance for sodium-ion batteries, RSC Advances, 16, 2026, 4567–4574. 10.1039/d5ra08915h.
  41. Y. Magazov et al., Upconversion materials: a new frontier in solar water-splitting, RSC Advances, 16, 2026, 1643–1661. 10.1039/d5ra07342a.
  42. A. Tangirbergen et al., Real-time detection of potato spoilage by gas sensor array coupled with microbiological analysis, LWT – Food Science and Technology, 239, 2026, 118926. 10.1016/j.lwt.2025.118926.
  43. M. Arkharbekova et al., Designing the future of energy storage: Comparative assessment of deposition methods for 3D foam-based next-generation lithium-ion batteries, Surface and Coatings Technology, 517, 2025, 132870. 10.1016/j.surfcoat.2025.132870.
  44. B. Akilbekov et al., Multiscale Molecular Modeling of Amphiphilic Polycarboxybetaine Interactions in Hydrocarbon and Deep Eutectic Solvent Environments for Sustainable Agricultural Biodiesel Purification, ES Food and Agroforestry, 22, 2025, 1940. 10.30919/faf1940.
  45. L. Amangaliyeva et al., Influence of water table fluctuations and temperature on light nonaqueous phase liquid distribution in heterogeneous porous media, Integrated Environmental Assessment and Management, 2025, 1–13. 10.1093/inteam/vjaf172.