Title :
Noise features in InP crystals operating under static, periodic or fluctuating electric fields
Author :
Adorno, D. Persano ; Alaimo, P. ; Pizzolato, N. ; Spagnolo, Bernardo
Author_Institution :
Dept. of Phys. & Chem., Univ. of Palermo, Palermo, Italy
Abstract :
The results of a study concerning the intrinsic noise in low-doped n-type InP crystals operating under static, periodic or fluctuating electric fields are shown. To simulate the dynamics of electrons in the bulk, we employ a Monte Carlo approach, by taking into account the main details of band structure, scattering processes, as well as heating effects. The noise features are investigated by computing the velocity fluctuations correlation function, its spectral density and the total noise power, for different values of amplitude and frequency of the driving field. We show how the noise spectra are affected by the electric field frequency and compare their peculiarities with those exhibited in the static field case. Preliminary findings obtained in InP crystals driven by an electric field fluctuating for the superimposition of a correlated noise source are discussed and compared with those previously obtained in GaAs bulks. Our results confirm that the diffusion noise in low-doped semiconductors can be reduced by the addition of a fluctuating component to the driving electric field and that this effect critically depends on the characteristic times of the external noise.
Keywords :
III-V semiconductors; Monte Carlo methods; band structure; crystal structure; electric field effects; indium compounds; random noise; GaAs bulks; InP; Monte Carlo approach; band structure; diffusion noise; driving field amplitude; driving field frequency; electric field fluctuation; electric field frequency; electron dynamics; external noise; fluctuating component addition; fluctuating electric fields; heating effects; intrinsic noise; low-doped n-type InP crystals; low-doped semiconductors; noise features; noise spectra; periodic electric fields; scattering process; spectral density; static electric fields; static field case; superimposition; total noise power; velocity fluctuations correlation function; Correlation; Electric fields; Fluctuations; Gallium arsenide; Indium phosphide; Monte Carlo methods; Noise; InP; Monte Carlo simulation; correlated noise source; hot-carrier noise;
Conference_Titel :
Computational Electronics (IWCE), 2014 International Workshop on
Conference_Location :
Paris
DOI :
10.1109/IWCE.2014.6865872