Two-dimensional (2D) materials recently emerged as a new type of nanostructures exhibited large potential for application in nanoscale devices. Nevertheless, many proposed applications require efficient modulation of magnetism and spatial charge distribution within these 2D nanostructures. Here we, via density functional theory (DFT), demonstrated that both magnetism and spatial charge distribution of recently experimentally realized germanane can be effectively modulated via a simple dehydrogenating process. Both single-sided and double-sided H vacancy clusters due to the unpairing of Ge-4p electrons can make germanane obtain magnetism with designated magnitudes. Charges of valence band maximum (VBM) and conduction band minimum (CBM) in ge...
Germanene is a novel 2D material with promising optoelectronic properties, tuning of which is to be ...
We present a joint experimental and theoretical study on double iron atom doped germanium clusters, ...
In this thesis we study the electronic properties of OH passivated germanium nanowires (OH-GeNWs) us...
Structural and electronic properties of armchair germanene nanoribbons functionalized by hydrogen at...
We investigate the electronic properties of Germanane and analyze its importance as 2-D channel mate...
We have performed a series of first-principles calculations within the framework of density function...
Electronic and topological properties of two-dimensional germanene modified by functional group X (X...
Using first principle calculations, we propose functionalized germanene (GeX, X = H, F, Cl, Br, I, O...
Recently, several research groups have reported the growth of germanene, a new member of the graphen...
Using first principles calculations, we show that each hydrogen vacancy created at graphane surface ...
Comprehensive density functional theory computations with van der Waals (vdW) correction demonstrate...
Two-dimensional (2D) materials are a class of materials that consist of a single layer of atoms arra...
The experimental realization of two-dimensional materials such as graphene, silicene and germanene h...
Similar to carbon, germanium exists in various structures such as three-dimensional crystalline germ...
In this work, the structural and electronic properties of graphene/germanene heterobilayer is invest...
Germanene is a novel 2D material with promising optoelectronic properties, tuning of which is to be ...
We present a joint experimental and theoretical study on double iron atom doped germanium clusters, ...
In this thesis we study the electronic properties of OH passivated germanium nanowires (OH-GeNWs) us...
Structural and electronic properties of armchair germanene nanoribbons functionalized by hydrogen at...
We investigate the electronic properties of Germanane and analyze its importance as 2-D channel mate...
We have performed a series of first-principles calculations within the framework of density function...
Electronic and topological properties of two-dimensional germanene modified by functional group X (X...
Using first principle calculations, we propose functionalized germanene (GeX, X = H, F, Cl, Br, I, O...
Recently, several research groups have reported the growth of germanene, a new member of the graphen...
Using first principles calculations, we show that each hydrogen vacancy created at graphane surface ...
Comprehensive density functional theory computations with van der Waals (vdW) correction demonstrate...
Two-dimensional (2D) materials are a class of materials that consist of a single layer of atoms arra...
The experimental realization of two-dimensional materials such as graphene, silicene and germanene h...
Similar to carbon, germanium exists in various structures such as three-dimensional crystalline germ...
In this work, the structural and electronic properties of graphene/germanene heterobilayer is invest...
Germanene is a novel 2D material with promising optoelectronic properties, tuning of which is to be ...
We present a joint experimental and theoretical study on double iron atom doped germanium clusters, ...
In this thesis we study the electronic properties of OH passivated germanium nanowires (OH-GeNWs) us...