Cryogenic thermoelectric (QVD) detectors: Emerging technique for fast single-photon counting and non-dispersive energy characterization

Authors: A. Gulian1; K. Wood2; D. Van Vechten3; G. Fritz4

Source: Journal of Modern Optics, Volume 51, Numbers 9-10, 15 June-10 July 2004 , pp. 1467-1490(24)

Publisher: Taylor and Francis Ltd

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Abstract:

''QVD'' detectors are based on thermoelectric heat-to-voltage (Q rarr V) conversion and digital (V rarr D) readout. We have devised and analyzed the performance of QVD detectors with several different sensor designs that enable use of high thermoelectric figure of merit samples, be they of thin film, bulk crystal, or whisker form. Our first QVD devices had the well-studied material Au-Fe as thin film sensors. More recently, we have confirmed the literature reports of substantially higher Seebeck coefficient at cryogenic temperatures in lanthanum (cerium) hexaborides. We have also investigated the kinetic properties of La(Ce)B6 crystals with different La-Ce ratios. Currently we are exploring prototype devices based on bulk single-crystalline sensors. These include a successfully tested candidate with a sharp-end hexaboride sensor and small-size bismuth absorber - a whisker prototype. In theory, QVD sensors are competitive with superconducting tunnel junction (STJ) and transition edge sensor (TES) devices in energy resolution ability. However, QVD sensors ought to be able to respond at very much faster rates than these competitors; the lanthanum-cerium hexaboride sensors are expected to reach rates of 100 MHz counting rates for UV/optical photons. In addition to traditional astrophysical applications, these detectors can be applied to the tasks of quantum computing and communication.

Document Type: Research article

DOI: 10.1080/09500340410001674448

Affiliations: 1: PAF/NRL Washington DC 20375 USA 2: NRL Washington DC 20375 USA 3: ONR Arlington VA 22217 USA 4: PRAXIS/NRL Washington DC 20375 USA

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