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In Honor of Nobel Laureate Dr. Aaron Ciechanover

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SIPS 2025 takes place from November 17-20, 2025 at the Dusit Thani Mactan Resort in Cebu, Philippines

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More than 400 abstracts submitted from over 50 countries
Abstracts Still Accepted for a Limited Time



Featuring many Nobel Laureates and other Distinguished Guests

ADVANCED PROGRAM

Orals | Summit Plenaries | Round Tables | Posters | Authors Index


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Oral Presentations


08:00 SUMMIT PLENARY - Dusit Ballroom
12:00 LUNCH - Tradewinds Café

SESSION:
AdvancedMaterialsTuePM1-R6
9th Intl Symposium on New & Advanced Materials and Technologies for Energy, Environment, Health and Sustainable Development
Tue. 18 Nov. 2025 / Room: Jasmin
Session Chairs: Alena Pribulova; Fernand D. S. Marquis; Student Monitors: TBA

14:00: [AdvancedMaterialsTuePM104] OS Plenary
Ti-Al-C, (Ti,Mo)-Al-C AND (Ti,Cr)-Al-C COATINGS FOR FUEL CELLS
Tetiana Prikhna1; Alexander Kuprin2; Viktoriya Podhurska3; Viktoriia Shtefan4; Vladimir Sverdun1; Myroslav Karpets1; Orest Ostash3; Fernand D. S. Marquis5; Pavel Potapov4; Semyon Ponomarov6; Tetiana Serbeniuk1; Viktor Moshchil1
1V. Bakul Institute for Superhard Materials of the National Academy of Sciences of Ukraine, Kyiv, Ukraine; 2National Science Center Kharkov Institute of Physics and Technology, Kharkov, Ukraine; 3Karpenko Physico-Mechanical Institute of the National Academy of Sciences of Ukraine, Lviv, Ukraine; 4Leibniz Institute for Solid State and Materials Research, Dresden, Germany; 5Integrated Materials Technologies and Systems (IMTS) and United Nano Technologies (UNT), Seaside, United States; 6Institute of Semiconductor Physics, Kyiv, Ukraine
Paper ID: 146 [Abstract]

Ultrahigh- Amorphous highly conductive coatings Ti-Al-C, (Ti,Mo)-Al-C and (Ti,Cr)-Al-C were deposited on titanium alloy substrates by hybrid magnetron using T2AlC and Ti3AlC2 MAX-phases-based targets and in parallel cathode-arc evaporation of Mo or Cr targets. The (Ti,Cr)-Al-C coating demonstrated the highest long-term oxidation resistance, and after heating in air at 600 °C for 1000 h, its surface electrical conductivity became even slightly higher after long-term heating: increased from s= 9.84×106 S/m to s= 4.35×105 S/m, which is explained by the crystallization of the amorphous coating during heating process. The nanohardness and Young's modulus of the coating after deposition were within 15 GPa and 240 GPa, respectively. The (Ti,Cr)-Al-C coating showed the highest electrochemical corrosion resistance among all deposited coatings in 3.5 wt.% NaCl aqueous solution at 25 °C: corrosion potential Ecorr = 0.044 V vs. saturated calomel electrode, corrosion current density icorr = 2.48×10-9 A/cm2. The hybrid magnetron deposited (Ti,Cr)-Al-C coatings can be used to protect interconnects in lightweight molten carbonate fuel cells elements.



14:20 POSTERS - Ballroom Foyer