The fast-evolving field of condensed matter physics is witnessing a rapid development of a new class of materials, called Dirac materials. The low-energy electronic excitation in these materials behaves like massless Dirac particles. These materials exhibit unique optoelectronic properties, and understanding of Dirac quasi-particle dynamics in two and three dimensions is imperative to realizing the potential applications. In this dissertation, we study two prominent Dirac materials that have unique optoelectronic properties: graphene (two-dimensional) and tantalum arsenide (three-dimensional). While the former can be regarded as the father of materials with a symmetry-protected Dirac spectrum, the latter is a more recent example of top...
In this thesis, two-dimensional materials such as graphene are tested for their suitability for opto...
Here we present a short introduction into physics of Dirac materials. In particular we review main p...
In this dissertation, we theorize the fundamentals of an ultrafast and ultrastrong optical field int...
In this book chapter, we review some of the progress made in nanoplasmonics and related optoelectron...
Surface plasmons are collective oscillation of electrons which are coupled to the incident electric ...
Collective oscillations of massless particles in two-dimensional (2D) Dirac materials offer an innov...
The purpose of this chapter is to review some important, recent theoretical discoveries regarding th...
In this dissertation, we theorize the fundamentals of an ultrafast and ultrastrong optical field int...
Ultrafast experiments using sub-picosecond pulses of light are poised to play an important role in t...
In this paper, we review and discuss how the recently discovered two-dimensional (2D) Dirac material...
Graphene, a single-atom-thick plane of carbon, has unique optoelectronic properties that result in a...
Recent years have seen the rapid discovery of solids whose low-energy electrons have a massless, lin...
In this dissertation, we study theoretically ultrafast processes accessible via the interaction of t...
When the world goes flat, we see through it differently. The key to reveal the secrets of low dimens...
In this dissertation, we study theoretically ultrafast processes accessible via the interaction of t...
In this thesis, two-dimensional materials such as graphene are tested for their suitability for opto...
Here we present a short introduction into physics of Dirac materials. In particular we review main p...
In this dissertation, we theorize the fundamentals of an ultrafast and ultrastrong optical field int...
In this book chapter, we review some of the progress made in nanoplasmonics and related optoelectron...
Surface plasmons are collective oscillation of electrons which are coupled to the incident electric ...
Collective oscillations of massless particles in two-dimensional (2D) Dirac materials offer an innov...
The purpose of this chapter is to review some important, recent theoretical discoveries regarding th...
In this dissertation, we theorize the fundamentals of an ultrafast and ultrastrong optical field int...
Ultrafast experiments using sub-picosecond pulses of light are poised to play an important role in t...
In this paper, we review and discuss how the recently discovered two-dimensional (2D) Dirac material...
Graphene, a single-atom-thick plane of carbon, has unique optoelectronic properties that result in a...
Recent years have seen the rapid discovery of solids whose low-energy electrons have a massless, lin...
In this dissertation, we study theoretically ultrafast processes accessible via the interaction of t...
When the world goes flat, we see through it differently. The key to reveal the secrets of low dimens...
In this dissertation, we study theoretically ultrafast processes accessible via the interaction of t...
In this thesis, two-dimensional materials such as graphene are tested for their suitability for opto...
Here we present a short introduction into physics of Dirac materials. In particular we review main p...
In this dissertation, we theorize the fundamentals of an ultrafast and ultrastrong optical field int...