Mikhail Khenner
Western Kentucky University
70 Papers
195 Citations
Mikhail Khenner is an academic researcher from Western Kentucky University. The author has contributed to research in topics: Dewetting & Surface diffusion. The author has an hindex of 16, co-authored 67 publications. Previous affiliations of Mikhail Khenner include Perm State University & Tel Aviv University.
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Papers
Thickness-dependent spontaneous dewetting morphology of ultrathin Ag films.
H. Krishna,Ritesh Sachan,J. Strader,Christopher P. Favazza,Mikhail Khenner,Ramki Kalyanaraman +5 more
TL;DR: It is shown that it is possible to form a variety of complex Ag nanomorphologies in a consistent manner, which could be useful in optical applications of Ag surfaces, such as in surface enhanced Raman sensing.
Ordinary and partial differential equations
Victor Henner,Tatyana Belozerova,Mikhail Khenner +2 more
- 29 Jan 2013
TL;DR: In this article, the Laplace Equation in a Rectangular Domain for Different Types of Boundary Conditions has been studied, including the matrix Eigenvalue Problem and auxiliary functions, w(x,t) for different types of boundary conditions.
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Thickness-dependent spontaneous dewetting morphology of ultrathin Ag films
H. Krishna,Ritesh Sachan,J. Strader,Christopher P. Favazza,Mikhail Khenner,Ramki Kalyanaraman +5 more
TL;DR: Sharma et al. as discussed by the authors showed that the morphological pathway of spontaneous dewetting of ultrathin Ag films on SiO2 under nanosecond laser melting is dependent on film thickness.
105
Ordinary Differential Equations
Victor Henner,A. Nepomnyashchy,Tatyana Belozerova,Mikhail Khenner +3 more
- 01 Jan 2022
TL;DR: An ODE is an equation that involves the derivatives of one independent variable as discussed by the authors , which is different from partial differential equation (PDE), which involves more than one variable. But both of these types of equations can be expressed using the second law of motion.
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Pulsed laser de wetting of Au films: Experiments and modeling of nanoscale behavior
TL;DR: In this article, the authors explored the quantitative thickness-dependent dewetting behavior of Au films under nanosecond (ns) pulsed laser melting on glass substrates and found that the trend in particle spacing and diameter in the thickness range of 3-16 nm was consistent with predictions of the classical spinodal dewetting theory.
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