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aKWISP: investigating short-distance interactions at sub-micron scales

The sub-micron range in the field of short distance interactions has yet to be opened to experimental investigation, and may well hold the key to understanding al least part of the dark matter puzzle. The aKWISP (advanced-KWISP) project introduces the novel Double Membrane Interaction Monitor (DMIM)...

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Detalles Bibliográficos
Autores principales: Cantatore, G., Anastassopoulos, V., Cetin, S., Fischer, H., Funk, W., Gardikiotis, A., Hoffmann, D.H.H., Karuza, M., Semertzidis, Y.K., Vitali, D., Zioutas, K.
Lenguaje:eng
Publicado: 2018
Materias:
Acceso en línea:https://dx.doi.org/10.3204/DESY-PROC-2017-02/cantatore_giovanni
http://cds.cern.ch/record/2312303
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author Cantatore, G.
Anastassopoulos, V.
Cetin, S.
Fischer, H.
Funk, W.
Gardikiotis, A.
Hoffmann, D.H.H.
Karuza, M.
Semertzidis, Y.K.
Vitali, D.
Zioutas, K.
author_facet Cantatore, G.
Anastassopoulos, V.
Cetin, S.
Fischer, H.
Funk, W.
Gardikiotis, A.
Hoffmann, D.H.H.
Karuza, M.
Semertzidis, Y.K.
Vitali, D.
Zioutas, K.
author_sort Cantatore, G.
collection CERN
description The sub-micron range in the field of short distance interactions has yet to be opened to experimental investigation, and may well hold the key to understanding al least part of the dark matter puzzle. The aKWISP (advanced-KWISP) project introduces the novel Double Membrane Interaction Monitor (DMIM), a combined source-sensing device where interaction distances can be as short as 100 nm or even 10 nm, much below the $\approx 1-10$ $\mu$m distance which is the lower limit encountered by current experimental efforts. aKWISP builds on the technology and the results obtained with the KWISP opto-mechanical force sensor now searching at CAST for the direct coupling to matter of solar chameleons. It will reach the ultimate quantum-limited sensitivity by exploiting an array of technologies, including operation at milli-Kelvin temperatures. Recent suggestions point at short-distance interactions studies as intriguing possibilities for the detection of axions and of new physical phenomena.
id cern-2312303
institution Organización Europea para la Investigación Nuclear
language eng
publishDate 2018
record_format invenio
spelling cern-23123032023-03-14T19:21:11Zdoi:10.3204/DESY-PROC-2017-02/cantatore_giovannihttp://cds.cern.ch/record/2312303engCantatore, G.Anastassopoulos, V.Cetin, S.Fischer, H.Funk, W.Gardikiotis, A.Hoffmann, D.H.H.Karuza, M.Semertzidis, Y.K.Vitali, D.Zioutas, K.aKWISP: investigating short-distance interactions at sub-micron scaleshep-exParticle Physics - Experimentastro-ph.IMAstrophysics and Astronomyphysics.ins-detDetectors and Experimental TechniquesThe sub-micron range in the field of short distance interactions has yet to be opened to experimental investigation, and may well hold the key to understanding al least part of the dark matter puzzle. The aKWISP (advanced-KWISP) project introduces the novel Double Membrane Interaction Monitor (DMIM), a combined source-sensing device where interaction distances can be as short as 100 nm or even 10 nm, much below the $\approx 1-10$ $\mu$m distance which is the lower limit encountered by current experimental efforts. aKWISP builds on the technology and the results obtained with the KWISP opto-mechanical force sensor now searching at CAST for the direct coupling to matter of solar chameleons. It will reach the ultimate quantum-limited sensitivity by exploiting an array of technologies, including operation at milli-Kelvin temperatures. Recent suggestions point at short-distance interactions studies as intriguing possibilities for the detection of axions and of new physical phenomena.The sub-micron range in the field of short distance interactions has yet to be opened to experimental investigation, and may well hold the key to understanding al least part of the dark matter puzzle. The aKWISP (advanced-KWISP) project introduces the novel Double Membrane Interaction Monitor (DMIM), a combined source-sensing device where interaction distances can be as short as 100 nm or even 10 nm, much below the 1-10 micron distance which is the lower limit encountered by current experimental efforts. aKWISP builds on the technology and the results obtained with the KWISP opto-mechanical force sensor now searching at CAST for the direct coupling to matter of solar chameleons. It will reach the ultimate quantum-limited sensitivity by exploiting an array of technologies, including operation at milli-Kelvin temperatures. Recent suggestions point at short-distance interactions studies as intriguing possibilities for the detection of axions and of new physical phenomena.arXiv:1803.07685oai:cds.cern.ch:23123032018
spellingShingle hep-ex
Particle Physics - Experiment
astro-ph.IM
Astrophysics and Astronomy
physics.ins-det
Detectors and Experimental Techniques
Cantatore, G.
Anastassopoulos, V.
Cetin, S.
Fischer, H.
Funk, W.
Gardikiotis, A.
Hoffmann, D.H.H.
Karuza, M.
Semertzidis, Y.K.
Vitali, D.
Zioutas, K.
aKWISP: investigating short-distance interactions at sub-micron scales
title aKWISP: investigating short-distance interactions at sub-micron scales
title_full aKWISP: investigating short-distance interactions at sub-micron scales
title_fullStr aKWISP: investigating short-distance interactions at sub-micron scales
title_full_unstemmed aKWISP: investigating short-distance interactions at sub-micron scales
title_short aKWISP: investigating short-distance interactions at sub-micron scales
title_sort akwisp: investigating short-distance interactions at sub-micron scales
topic hep-ex
Particle Physics - Experiment
astro-ph.IM
Astrophysics and Astronomy
physics.ins-det
Detectors and Experimental Techniques
url https://dx.doi.org/10.3204/DESY-PROC-2017-02/cantatore_giovanni
http://cds.cern.ch/record/2312303
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