1 |
New form for reduced modeling of soot oxidation: Accounting for multi-site kinetics and surface reactivity Frenklach M Combustion and Flame, 201, 148, 2019 |
2 |
Extending surface plasmon resonance spectroscopy to platinum surfaces Rheinberger T, Ohm D, Zhumaev UE, Domke KF Electrochimica Acta, 314, 96, 2019 |
3 |
Surface broken bonds: An efficient way to assess the surface behaviour of fluorite Gao ZY, Fan RY, Ralston J, Sun W, Hu YH Minerals Engineering, 130, 15, 2019 |
4 |
Tuning the electronic and chemisorption properties of hexagonal MgO nanotubes by doping - Theoretical study Jovanovic A, Petkovic M, Pasti IA, Johansson B, Skorodumova NV Applied Surface Science, 457, 1158, 2018 |
5 |
Micro-structuring the surface reactivity of a borosilicate glass via thermal poling Lepicard A, Cardinal T, Fargin E, Adamietz F, Rodriguez V, Richardson K, Dussauze M Chemical Physics Letters, 664, 10, 2016 |
6 |
Surface chemistry and reactivity of SiO2 polymorphs: A comparative study on alpha-quartz and alpha-cristobalite Tang CH, Zhu JX, Li ZH, Zhu RL, Zhou Q, Wei JM, He HP, Tao Q Applied Surface Science, 355, 1161, 2015 |
7 |
Soot surface reactivity during surface growth and oxidation in laminar diffusion flames Khosousi A, Dworkin SB Combustion and Flame, 162(12), 4523, 2015 |
8 |
Phosphate alteration of chloride behavior at the boehmite-water interface: New insights from ion-probe flow adsorption microcalorimetry Gale SA, Harvey OR, Rhue RD Journal of Colloid and Interface Science, 455, 71, 2015 |
9 |
Oxygen mobility and surface reactivity of PrNi(1-x)Co(x)O(3-delta)perovskites and their nanocomposites with Ce0.9Y0.1O2-delta by temperature-programmed isotope exchange experiments Sadykov V, Eremeev N, Sadovskaya E, Bobin A, Ishchenko A, Pelipenko V, Muzykantov V, Krieger T, Amanbaeva D Solid State Ionics, 273, 35, 2015 |
10 |
Water surface coverage effects on reactivity of plasma oxidized Ti films Pranevicius L, Pranevicius LL, Vilkinis P, Baltaragis S, Gedvilas K Applied Surface Science, 295, 240, 2014 |