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ตาราง ผลงานตีพิมพ์ Scopus ปี 2025 หน่วยงาน เทคโนโลยียางฯ
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1Masa A., Worlee A., Jehsoh N. and Hayeemasae N. (2025). A flower-like morphology in natural rubber latex film binder: Mechanical and antifungal characteristics. Journal of Vinyl and Additive Technology
Cited: 0 doi: https://doi.org/10.1002/vnl.22218
2Suwan A., Sukhawipat N., Pasetto P., Saetung A. and Saetung N. (2025). A new bio-based waterborne polyurethane/silica coating efficient against common and marine bacteria. Progress in Organic Coatings, 208
Cited: 0 doi: https://doi.org/10.1016/j.porgcoat.2025.109538
3Masa A., Jehsoh N. and Hayeemasae N. (2025). Application of natural rubber latex foam as an effective oil absorbent. Polimeros, 35(1)
Cited: 0 doi: https://doi.org/10.1590/0104-1428.20240027
4Puteh M., Kaesaman A., Saiwari S. and Nakason C. (2025). Can Grafted Natural Rubber Compatibilizers Enhance Interfacial Compatibility and Performance of Dynamically Cured NR/EVA Thermoplastic Vulcanizates. Journal of Vinyl and Additive Technology
Cited: 0 doi: https://doi.org/10.1002/vnl.70002
5Kaesaman A., Khunrang T. and Nakason C. (2025). Cyclization of natural rubber (NR) latex: Synthesis, characterization and application in NR compounds and as a compatibilizer in NR/acrylonitrile butadiene rubber (NBR) blends. Express Polymer Letters, 19(8), 753-772.
Cited: 0 doi: https://doi.org/10.3144/expresspolymlett.2025.58
6Masa A., Jehsoh N. and Hayeemasae N. (2025). Dye Adsorbent from Natural Rubber Latex Foam: Efficiency and Post-Utilization. Polymers, 17(1)
Cited: 0 doi: https://doi.org/10.3390/polym17010106
7Hayeemasae N., Soontaranon S., Zakaria Z., Mohamad Rasidi M. and Masa A. (2025). Effect of styrene content on structure and properties of vulcanizates from natural rubber grafted with polystyrene. Progress in Rubber, Plastics and Recycling Technology
Cited: 0 doi: https://doi.org/10.1177/14777606251321527
8Kraibut A., Kaewsakul W., Saiwari S., Sahakaro K., Noordermeer J. and Dierkes W. (2025). Elucidating Degradation Phenomena During Mixing of Silica-Natural Rubber Compounds: The Interplay of Viscoelastic Behavior and Silane Microstructures. Polymer Engineering and Science
Cited: 0 doi: https://doi.org/10.1002/pen.70095
9Masa A., Baru F., Saiwari S. and Hayeemasae N. (2025). Enhancing antibacterial performance while maintaining natural rubber foam specifications: Is it possible?. Cellular Polymers
Cited: 0 doi: https://doi.org/10.1177/02624893251370488
10Adlim M., , , Puspita K., Rahmayani R., Abu-Bakar N., Ilham Z., Salaeh S., ?zmen I. and Yavuz M. (2025). Immobilization Method of ZnO Nanoparticles on Nylon Monofilament Assembled as a Bottle Brush Model and Photocatalytic Activities on Rhodamine B Decomposition. International Journal of Technology, 16(5), 1772-1785.
Cited: 1 doi: https://doi.org/10.14716/ijtech.v16i5.7768
11Surya I. and Hayeemasae N. (2025). Increased Rubber-Filler Interaction of the Compound of Natural Rubber-Silica by Aminopropyltriethoxy Silane. AIP Conference Proceedings, 3166(1)
Cited: 0 doi: https://doi.org/10.1063/5.0236984
12Hayeemasae N., Worlee A. and Masa A. (2025). Influence Of Calcium Carbonate Content On Properties Of Natural Rubber And Acrylic Blends For Coating Applications. Journal of Applied Science and Engineering (Taiwan), 28(2), 411-419.
Cited: 0 doi: https://doi.org/10.6180/jase.202502_28(2).0019
13Worlee A., Saiwari S., Dierkes W., Sarkawi S., Jantaporn W. and Masae M. (2025). Innovative approaches to thermochemical devulcanization of carbon black-filled SBR. Progress in Rubber Plastics and Recycling Technology
Cited: 0 doi: https://doi.org/10.1177/14777606251351050
14Rashid S., Zainuddin N., Hayeemasae N., Ramli M. and Shuib R. (2025). Investigation of Thermal Aging, Accelerated Weathering, and Durability of Self-Healing Natural Rubber Reinforced Multi-Walled Carbon Nanotube (MWCNT) Composites. Polymer Engineering and Science
Cited: 0 doi: https://doi.org/10.1002/pen.70020
15Jarnthong M., , Masa A., Thongnuanchan B., Saito H., Soontaranon S., Sakai T. and Lopattananon N. (2025). Nanocellulose reinforcement of epoxidized natural rubber: Enhancing strain-induced crystallization for high-performance bio-composites. Polymer Composites
Cited: 0 doi: https://doi.org/10.1002/pc.29594
16Srichai K., , Suwan A., Chaisit T., Saetung A. and Saetung N. (2025). New biofilm composite materials from natural rubber and cellulose nanocrystals from rubber seed shell: Preliminary study on cytotoxicity properties. Progress in Organic Coatings, 204
Cited: 0 doi: https://doi.org/10.1016/j.porgcoat.2025.109250
17Hayeemasae N., Saiwari S., Soontaranon S., Fathurrohman M. and Masa A. (2025). Potential for using sepiolite as dispersing agent in phenolic resin crosslinked natural rubber/silica composites. Express Polymer Letters, 19(3), 339-349.
Cited: 0 doi: https://doi.org/10.3144/expresspolymlett.2025.24
18Kaesaman A., Chuaysakul R. and Nakason C. (2025). Preparation of sustainable creaming agents for eco-friendly processing of natural rubber latex concentrates. Journal of Dispersion Science and Technology
Cited: 0 doi: https://doi.org/10.1080/01932691.2025.2502877
19Surya I., Sadanta R., Sukeksi L., Sidabutar R. and Hayeemasae N. (2025). Processing characteristics and mechanical properties of styrene butadiene rubber filled with varying amounts of silica. IOP Conference Series: Earth and Environmental Science, 1445(1)
Cited: 0 doi: https://doi.org/10.1088/1755-1315/1445/1/012070
20Sarip M., Abdul Wahab N., Ahmad Z., Mustafa M., Saiwari S., Surip S. and Samsudin D. (2025). Properties of Re-Vulcanized Waste EPDM/EPDM Rubber Blends with Different Ratios of ZDMA. Advances in Science and Technology, 168 AST, 91-99.
Cited: 0 doi: https://doi.org/10.4028/p-peJnn6
21Sarkar S., Aiswarya S., Salaeh S., Hirschberg V. and Banerjee S. (2025). Self-healing and shape memory functions in elastomers: Recent advances and future prospectives. Polymer Engineering and Science, 65(4), 1620-1654.
Cited: 0 doi: https://doi.org/10.1002/pen.27092
22Sarkar S., Aiswarya S., Salaeh S., Hirschberg V. and Banerjee S. (2025). Self-healing and shape memory functions in elastomers: Recent advances and future prospectives. Polymer Engineering and Science
Cited: 0 doi: https://doi.org/10.1002/pen.27092
23Salaeh S., Das A., Marzec A., Thongnuanchan B., Szadkowski B. and Wiessner S. (2025). Structure-Property Relationship of Diamine Cross-Linked Acrylate-Modified Natural Rubber: Improving Mechanical Properties, Shape Memory Behavior, and Thermal Stability of the Vulcanizates. ACS Applied Polymer Materials, 7(12), 8335-8350.
Cited: 0 doi: https://doi.org/10.1021/acsapm.5c01671
24Kraibut A., Kaewsakul W., Saiwari S., Sahakaro K., Noordermeer J. and Dierkes W. (2025). Suppressed degradation by stabilizers during mixing of silica/silane-filled natural rubber. Polymer Degradation and Stability, 233
Cited: 0 doi: https://doi.org/10.1016/j.polymdegradstab.2024.111164
25Suwan A., Sukhawipat N., Saetung A., Saetung N. and Pasetto P. (2025). Synthesis of silane-functionalized polyols from natural rubber by thiol-ene click reaction and preparation of waterborne polyurethane films. Progress in Organic Coatings, 201
Cited: 0 doi: https://doi.org/10.1016/j.porgcoat.2025.109109
26Chaipo S., Itsaradamkoeng P., Salaeh S., Wongtimnoi K., Putson C. and Zhang J. (2025). Tailored chain interaction of binary and ternary PVDF-HFP and PVDF-TrFE-CTFE / graphene nanoplatelets on dielectric properties and charge density capability. Polymer, 326
Cited: 0 doi: https://doi.org/10.1016/j.polymer.2025.128339
27Surya I. and Hayeemasae N. (2025). The Effect of Aptes-Silane on Tensile and Ageing Properties of the Compound of Natural Rubber-Silica. AIP Conference Proceedings, 3166(1)
Cited: 0 doi: https://doi.org/10.1063/5.0236981
28Surya I., Mukhlishien and Hayeemasae N. (2025). The Potency of Fatty Alcohol Compounds to Improve the Silica Dispersion in the Compound of Natural Rubber with Silica. AIP Conference Proceedings, 3166(1)
Cited: 0 doi: https://doi.org/10.1063/5.0236986
29Nakason C., Nuthong P. and Kaesaman A. (2025). Transforming waste cooking oil into zinc soap: a sustainable approach to multifunctional additives for enhancing natural rubber composites. Journal of Polymer Research, 32(5)
Cited: 0 doi: https://doi.org/10.1007/s10965-025-04392-2
30Jarnthong M., Wannalak A., Thongnuanchan B., Kaesaman A., Saito H., Soontaranon S. and Lopattananon N. (2025). Unveiling the Impact of Cellulose Nanofiber on the Mechanical Properties and Strain-Induced Crystallization Mechanism of ENR Nanocomposites. Polymer Engineering and Science
Cited: 0 doi: https://doi.org/10.1002/pen.70152
รวม Scopus 30 รายการ 1 citations

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