| Title | Non-Markovian Hole Excess Noise in Avalanche Amorphous Selenium Thin Films. |
| Publication Type | Journal Article |
| Year of Publication | 2023 |
| Authors | Mukherjee A, Han Z, Ho LThanh Trie, Rumaiz AK, Vasileska D, Goldan AH |
| Journal | ACS Omega |
| Volume | 8 |
| Issue | 26 |
| Pagination | 23579-23586 |
| Date Published | 2023 Jul 04 |
| ISSN | 2470-1343 |
| Abstract | Enhancing the signal-to-noise ratio in avalanche photodiodes by utilizing impact ionization gain requires materials exhibiting low excess noise factors. Amorphous selenium (a-Se) as a wide bandgap at ∼2.1 eV, a solid-state avalanche layer, demonstrates single-carrier hole impact ionization gain and manifests ultralow thermal generation rates. A comprehensive study of the history dependent and non-Markovian nature of hot hole transport in a-Se was modeled using a Monte Carlo (MC) random walk of single hole free flights, interrupted by instantaneous phonon, disorder, hole-dipole, and impact-ionization scattering interactions. The hole excess noise factors were simulated for 0.1-15 μm a-Se thin-films as a function of mean avalanche gain. The hole excess noise factors in a-Se decreases with an increase in electric field, impact ionization gain, and device thickness. The history dependent nature of branching of holes is explained using a Gaussian avalanche threshold distance distribution and the dead space distance, which increases determinism in the stochastic impact ionization process. An ultralow non-Markovian excess noise factor of ∼1 was simulated for 100 nm a-Se thin films corresponding to avalanche gains of 1000. Future detector designs can utilize the nonlocal/non-Markovian nature of the hole avalanche in a-Se, to enable a true solid-state photomultiplier with noiseless gain. |
| DOI | 10.1021/acsomega.3c01256 |
| Alternate Journal | ACS Omega |
| PubMed ID | 37426242 |
| PubMed Central ID | PMC10324078 |
