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Fresnel Reflection of Optical Fibres at Cryogenic Temperature for Absolute Radiometric Measurements
We have measured the temperature dependent Fresnel reflection loss and Rayleigh backscatter of SMF-28 fibre, polarisation maintaining (PM) single-mode fibre and solid core high index PM photonic crystal fibre (PCF). We show that the effective refractive index N_{eff} of these fibres reduces by 0.11...
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creator | White, M.G. Baumann, E. Vayshenker, I. Ruiz, Z.E. Stephens, M.S. Lehman, J.H. |
description | We have measured the temperature dependent Fresnel reflection loss and Rayleigh backscatter of SMF-28 fibre, polarisation maintaining (PM) single-mode fibre and solid core high index PM photonic crystal fibre (PCF). We show that the effective refractive index N_{eff} of these fibres reduces by 0.11 %, 0.15 % and 0.30 % respectively from room temperature to 5 K. This relates to an increase in fibre output power of 0.02 %, 0.03 % and 0.06 %. The Rayleigh backscatter is shown to increase 15x for the standard single mode fibre, and 4x for the photonic crystal fibre at low temperature. We have quantified these changes in order to apply a correction to our fibre-coupled primary standard cryogenic radiometer for optical fibre power measurements. We use an in-situ beam-splitter measurement technique to measure the Fresnel reflection at 1310 nm and 1550 nm and we confirm the results at 1550 nm with an optical frequency domain reflectometer measurement. |
doi_str_mv | 10.1109/CPEM49742.2020.9191815 |
format | conference_proceeding |
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We show that the effective refractive index N_{eff} of these fibres reduces by 0.11 %, 0.15 % and 0.30 % respectively from room temperature to 5 K. This relates to an increase in fibre output power of 0.02 %, 0.03 % and 0.06 %. The Rayleigh backscatter is shown to increase 15x for the standard single mode fibre, and 4x for the photonic crystal fibre at low temperature. We have quantified these changes in order to apply a correction to our fibre-coupled primary standard cryogenic radiometer for optical fibre power measurements. We use an in-situ beam-splitter measurement technique to measure the Fresnel reflection at 1310 nm and 1550 nm and we confirm the results at 1550 nm with an optical frequency domain reflectometer measurement.</description><identifier>EISSN: 2160-0171</identifier><identifier>EISBN: 9781728158983</identifier><identifier>EISBN: 1728158982</identifier><identifier>DOI: 10.1109/CPEM49742.2020.9191815</identifier><language>eng</language><publisher>IEEE</publisher><subject>Backscatter ; Cryogenic properties ; Cryogenics ; Fresnel reflection ; Loss measurement ; measurement techniques ; measurement uncertainty ; Optical fibers ; optical fibre power ; primary standard ; Rayleigh backscatter</subject><ispartof>2020 Conference on Precision Electromagnetic Measurements (CPEM), 2020, p.1-2</ispartof><woscitedreferencessubscribed>false</woscitedreferencessubscribed></display><links><openurl>$$Topenurl_article</openurl><openurlfulltext>$$Topenurlfull_article</openurlfulltext><thumbnail>$$Tsyndetics_thumb_exl</thumbnail><linktohtml>$$Uhttps://ieeexplore.ieee.org/document/9191815$$EHTML$$P50$$Gieee$$H</linktohtml><link.rule.ids>309,310,780,784,789,790,27925,54555,54932</link.rule.ids><linktorsrc>$$Uhttps://ieeexplore.ieee.org/document/9191815$$EView_record_in_IEEE$$FView_record_in_$$GIEEE</linktorsrc></links><search><creatorcontrib>White, M.G.</creatorcontrib><creatorcontrib>Baumann, E.</creatorcontrib><creatorcontrib>Vayshenker, I.</creatorcontrib><creatorcontrib>Ruiz, Z.E.</creatorcontrib><creatorcontrib>Stephens, M.S.</creatorcontrib><creatorcontrib>Lehman, J.H.</creatorcontrib><title>Fresnel Reflection of Optical Fibres at Cryogenic Temperature for Absolute Radiometric Measurements</title><title>2020 Conference on Precision Electromagnetic Measurements (CPEM)</title><addtitle>CPEM</addtitle><description>We have measured the temperature dependent Fresnel reflection loss and Rayleigh backscatter of SMF-28 fibre, polarisation maintaining (PM) single-mode fibre and solid core high index PM photonic crystal fibre (PCF). 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We use an in-situ beam-splitter measurement technique to measure the Fresnel reflection at 1310 nm and 1550 nm and we confirm the results at 1550 nm with an optical frequency domain reflectometer measurement.</description><subject>Backscatter</subject><subject>Cryogenic properties</subject><subject>Cryogenics</subject><subject>Fresnel reflection</subject><subject>Loss measurement</subject><subject>measurement techniques</subject><subject>measurement uncertainty</subject><subject>Optical fibers</subject><subject>optical fibre power</subject><subject>primary standard</subject><subject>Rayleigh backscatter</subject><issn>2160-0171</issn><isbn>9781728158983</isbn><isbn>1728158982</isbn><fulltext>true</fulltext><rsrctype>conference_proceeding</rsrctype><creationdate>2020</creationdate><recordtype>conference_proceeding</recordtype><sourceid>6IE</sourceid><recordid>eNotkN1KAzEUhKMgWGufQJC8wNaTk91NclmWVoWWSqnXJbs5K5H9KUl60bd3wV7NwHwMwzD2KmApBJi36mu9y43KcYmAsDTCCC2KO7YwSguFk9dGy3s2Q1FCBkKJR_YU4y8A5gByxppNoDhQxw_UdtQkPw58bPn-nHxjO77x9ZRzm3gVruMPDb7hR-rPFGy6BOLtGPiqjmN3ScQP1vmxpxQmaEc2TkBPQ4rP7KG1XaTFTefse7M-Vh_Zdv_-Wa22mUeQKdO61M40ZWsMaKwRlEWZg8OimNaiUlISkFMO61q7xlhhrQOrhS7awkqSc_by3-uJ6HQOvrfherp9Iv8Aw6JXWQ</recordid><startdate>202008</startdate><enddate>202008</enddate><creator>White, M.G.</creator><creator>Baumann, E.</creator><creator>Vayshenker, I.</creator><creator>Ruiz, Z.E.</creator><creator>Stephens, M.S.</creator><creator>Lehman, J.H.</creator><general>IEEE</general><scope>6IE</scope><scope>6IH</scope><scope>CBEJK</scope><scope>RIE</scope><scope>RIO</scope></search><sort><creationdate>202008</creationdate><title>Fresnel Reflection of Optical Fibres at Cryogenic Temperature for Absolute Radiometric Measurements</title><author>White, M.G. ; Baumann, E. ; Vayshenker, I. ; Ruiz, Z.E. ; Stephens, M.S. ; Lehman, J.H.</author></sort><facets><frbrtype>5</frbrtype><frbrgroupid>cdi_FETCH-LOGICAL-i203t-8868d9c6f99082b207a2340d25502427733e0ed7d2bb8dc9a1aad0a8185f5a3e3</frbrgroupid><rsrctype>conference_proceedings</rsrctype><prefilter>conference_proceedings</prefilter><language>eng</language><creationdate>2020</creationdate><topic>Backscatter</topic><topic>Cryogenic properties</topic><topic>Cryogenics</topic><topic>Fresnel reflection</topic><topic>Loss measurement</topic><topic>measurement techniques</topic><topic>measurement uncertainty</topic><topic>Optical fibers</topic><topic>optical fibre power</topic><topic>primary standard</topic><topic>Rayleigh backscatter</topic><toplevel>online_resources</toplevel><creatorcontrib>White, M.G.</creatorcontrib><creatorcontrib>Baumann, E.</creatorcontrib><creatorcontrib>Vayshenker, I.</creatorcontrib><creatorcontrib>Ruiz, Z.E.</creatorcontrib><creatorcontrib>Stephens, M.S.</creatorcontrib><creatorcontrib>Lehman, J.H.</creatorcontrib><collection>IEEE Electronic Library (IEL) Conference Proceedings</collection><collection>IEEE Proceedings Order Plan (POP) 1998-present by volume</collection><collection>IEEE Xplore All Conference Proceedings</collection><collection>IEEE Electronic Library (IEL)</collection><collection>IEEE Proceedings Order Plans (POP) 1998-present</collection></facets><delivery><delcategory>Remote Search Resource</delcategory><fulltext>fulltext_linktorsrc</fulltext></delivery><addata><au>White, M.G.</au><au>Baumann, E.</au><au>Vayshenker, I.</au><au>Ruiz, Z.E.</au><au>Stephens, M.S.</au><au>Lehman, J.H.</au><format>book</format><genre>proceeding</genre><ristype>CONF</ristype><atitle>Fresnel Reflection of Optical Fibres at Cryogenic Temperature for Absolute Radiometric Measurements</atitle><btitle>2020 Conference on Precision Electromagnetic Measurements (CPEM)</btitle><stitle>CPEM</stitle><date>2020-08</date><risdate>2020</risdate><spage>1</spage><epage>2</epage><pages>1-2</pages><eissn>2160-0171</eissn><eisbn>9781728158983</eisbn><eisbn>1728158982</eisbn><abstract>We have measured the temperature dependent Fresnel reflection loss and Rayleigh backscatter of SMF-28 fibre, polarisation maintaining (PM) single-mode fibre and solid core high index PM photonic crystal fibre (PCF). We show that the effective refractive index N_{eff} of these fibres reduces by 0.11 %, 0.15 % and 0.30 % respectively from room temperature to 5 K. This relates to an increase in fibre output power of 0.02 %, 0.03 % and 0.06 %. The Rayleigh backscatter is shown to increase 15x for the standard single mode fibre, and 4x for the photonic crystal fibre at low temperature. We have quantified these changes in order to apply a correction to our fibre-coupled primary standard cryogenic radiometer for optical fibre power measurements. We use an in-situ beam-splitter measurement technique to measure the Fresnel reflection at 1310 nm and 1550 nm and we confirm the results at 1550 nm with an optical frequency domain reflectometer measurement.</abstract><pub>IEEE</pub><doi>10.1109/CPEM49742.2020.9191815</doi><tpages>2</tpages></addata></record> |
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subjects | Backscatter Cryogenic properties Cryogenics Fresnel reflection Loss measurement measurement techniques measurement uncertainty Optical fibers optical fibre power primary standard Rayleigh backscatter |
title | Fresnel Reflection of Optical Fibres at Cryogenic Temperature for Absolute Radiometric Measurements |
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