Scholar iON
Academic Synthesis
The referenced papers present advancements in the fields of particle physics and stochastic simulations. Nakazawa et al. discuss the development of a prototype analog front-end for Time Projection Chambers (TPCs) used in dark matter and neutrino research, highlighting the design and performance of a new ASIC that can operate under diverse conditions with low noise and a wide dynamic range. Erban, Chapman, and Maini provide a comprehensive introduction to stochastic simulations in reaction-diffusion processes, elucidating methods like the Gillespie algorithm and linking stochastic and deterministic models. Together, these studies underscore the importance of precise instrumentation and robust computational methods in advancing experimental and theoretical research in physics, facilitating deeper insights into complex physical phenomena.
We report on the recent development of a versatile analog front-end compatible with a negative-ion $μ$-TPC for a directional dark matter search as well as a dual-phase, next-generation $\mathcal{O}$(10~kt) liquid argon TPC to study neutrino oscillations, nucleon decay, and astrophysical neutrinos. Although the operating conditions for negative-ion and liquid argon TPCs are quite different (room temperature \textit{vs.} $\sim$88~K operation, respectively), the readout electronics requirements are similar. Both require a wide-dynamic range up to 1600 fC, and less than 2000--5000 e$^-$ noise for a typical signal of 80 fC with a detector capacitance of $C_{\rm det} \approx 300$~pF. In order to fulfill such challenging requirements, a prototype ASIC was newly designed using 180-nm CMOS technology. Here, we report on the performance of this ASIC, including measurements of shaping time, dynamic range, and equivalent noise charge (ENC). We also demonstrate the first operation of this ASIC on a low-pressure negative-ion $μ$-TPC.
A practical introduction to stochastic modelling of reaction-diffusion processes is presented. No prior knowledge of stochastic simulations is assumed. The methods are explained using illustrative examples. The article starts with the classical Gillespie algorithm for the stochastic modelling of chemical reactions. Then stochastic algorithms for modelling molecular diffusion are given. Finally, basic stochastic reaction-diffusion methods are presented. The connections between stochastic simulations and deterministic models are explained and basic mathematical tools (e.g. chemical master equation) are presented. The article concludes with an overview of more advanced methods and problems.