Search arXivSearch

arXiv · 1407.2761

Determination of the electronics transfer function for current transient measurements

Abstract

We describe a straight-forward method for determining the transfer function of the readout of a sensor for the situation in which the current transient of the sensor can be precisely simulated. The method relies on the convolution theorem of Fourier transforms. The specific example is a planar silicon pad diode connected with a 50 $Ω$ cable to an amplifier followed by a 5 GS/s sampling oscilloscope. The charge carriers in the sensor were produced by picosecond lasers with light of wavelengths of 675 and 1060 nm. The transfer function is determined from the 1060 nm data with the pad diode biased at 1000 V. It is shown that the simulated sensor response convoluted with this transfer function provides an excellent description of the measured transients for the laser light of both wavelengths, at voltages 50 V above the depletion voltage of about 90 V up to the maximum applied voltage of 1000 V. The method has been developed for the precise measurement of the dependence of the drift velocity of electrons and holes in high-ohmic silicon on crystal orientation, electric field and temperature. It can also be applied for the analysis of transient-current measurements of radiation-damaged solid state sensors, as long as sensors properties, like high-frequency capacitance, are not too different.

Explore related subjects

Keep this discovery

Explore connections, maps & timelines

BibTeXRIS

Christian Scharf, Robert Klanner. 2014-10-02. Determination of the electronics transfer function for current transient measurements. https://doi.org/10.1016/j.nima.2014.12.016

Cite the original work for its findings. Save a collection to share your selection of sources.

KEEP EXPLORING

Related papers

A Low-Complexity 200 Mbit/s Full-Duplex Digital Link Over a Single Coaxial Cable for Laboratory Instrumentation

Modern full-duplex communication systems, such as Gigabit Ethernet, enable high data rates over challenging transmission media but require sophisticated circuitry and non-trivial digital interfaces. For laboratory instrumentation, the objective may instead be to achieve moderate-bandwidth full-duplex communication over short, well-controlled coaxial cables with minimal circuit and interface complexity. We present a low-complexity bidirectional digital interconnect that enables simultaneous transmission and reception of baseband logic signals over a single coaxial cable. The circuit combines a discrete passive resistive hybrid providing line termination and directional separation, a single logic gate as line driver, and a commercial differential receiver used as a comparator. No modulation, transformer coupling, adaptive calibration, or active analog or digital echo cancellation is required. The design target is full-duplex operation at 200 MBit/s over 10 m of standard RG-178 cable. An analytical treatment of the hybrid network determines the system parameter that maximizes the differential signal amplitude at the receiver, while circuit simulations predict the deterministic timing errors resulting from imperfect directional separation. Experimental measurements confirm the predicted deterministic jitter and show good agreement with the simulation results. For typical laboratory coaxial cables up to 10 m, the measured peak-to-peak edge timing error remains below 1.2 ns. A bidirectional transmission experiment with randomized data demonstrates a clearly open eye diagram. It was found that the transceiver inherently provides loopback functionality when the transmission line is left open. The proposed approach provides a simple, protocol-independent bidirectional physical link which may be useful in laboratory instrumentation where cable routing is constrained.

physics.ins-det

UPLOAD-HELIX: High-Helicity Single-Mode Microwave Haloscope with Low-Noise Interferometric Readout for Ultralight Axion Dark Matter

We propose a superconducting single-mode microwave haloscope based on chiral cavity resonators for the detection of ultralight dark matter axions over the mass range $4\times10^{-19}$-$~4\times10^{-14}\,\mathrm{eV}$. Building on the single-mode chiral-cavity concept introduced by Bourhill et al. [Phys. Rev. D 108, 052014 (2023); arXiv:2208.01640], we develop a resonator geometry compatible with subtractive manufacturing from high-purity bulk niobium, taking advantage of the substantially lower surface resistance achievable relative to the additively manufactured Möbius cavity proposed in the earlier work. An inverse-design framework is then used to maximise a figure of merit derived to minimise the measurement time required to achieve a fixed experimental sensitivity. The resulting optimised bulk-niobium design achieves a figure of merit more than three orders of magnitude larger than the additively manufactured Mobius benchmark. An experimentally informed microwave interferometric readout model, incorporating measured electronics noise and active suppression of pump amplitude noise, is used to project the sensitivity of the proposed experiment. For an acquisition time of three months, the haloscope is projected to reach $g_{aγγ}<10^{-11}\,\mathrm{GeV}^{-1}$ across more than four orders of magnitude in axion mass. The projected sensitivity extends approximately one order of magnitude below the current exclusion limits set by CAST, providing a practical pathway towards a high-sensitivity direct search for ultralight dark matter axions.

physics.ins-det

High-Speed Semi-FE Readout Module for ATLAS MDT at HL-LHC: Design and Production-Level Characterization

The High-Luminosity upgrade of the Large Hadron Collider (HL-LHC) introduces increased demands on the ATLAS Muon Spectrometer, particularly in terms of data throughput, timing distribution and system reliability. The Phase-II Chamber Service Module (CSM) is a key component of the upgraded Monitored Drift Tube (MDT) trigger and readout system, providing a high-speed interface between the front-end electronics and the backend systems. This paper describes the design and implementation of the Phase-II CSM, together with its validation. The results show that the CSM supports two independent optical uplinks, each operating at a line rate of 10.24 Gbps, together with clock distribution and slow control in the expected operating environment. Integration with small-diameter MDT (sMDT) chambers and tests with the prototype L0MDT trigger system are also presented. The CSM boards are now in production and will be used for installation and integration during the upcoming LHC Long Shutdown.

physics.ins-det