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Energetic Electron Precipitation Driven by Electromagnetic Ion Cyclotron Waves from ELFIN’s Low Altitude Perspective

We review comprehensive observations of electromagnetic ion cyclotron (EMIC) wave-driven energetic electron precipitation using data collected by the energetic electron detector on the Electron Losses and Fields InvestigatioN (ELFIN) mission, two polar-orbiting low-altitude spinning CubeSats, measur...

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Autores principales: Angelopoulos, V., Zhang, X.-J., Artemyev, A. V., Mourenas, D., Tsai, E., Wilkins, C., Runov, A., Liu, J., Turner, D. L., Li, W., Khurana, K., Wirz, R. E., Sergeev, V. A., Meng, X., Wu, J., Hartinger, M. D., Raita, T., Shen, Y., An, X., Shi, X., Bashir, M. F., Shen, X., Gan, L., Qin, M., Capannolo, L., Ma, Q., Russell, C. L., Masongsong, E. V., Caron, R., He, I., Iglesias, L., Jha, S., King, J., Kumar, S., Le, K., Mao, J., McDermott, A., Nguyen, K., Norris, A., Palla, A., Roosnovo, A., Tam, J., Xie, E., Yap, R. C., Ye, S., Young, C., Adair, L. A., Shaffer, C., Chung, M., Cruce, P., Lawson, M., Leneman, D., Allen, M., Anderson, M., Arreola-Zamora, M., Artinger, J., Asher, J., Branchevsky, D., Cliffe, M., Colton, K., Costello, C., Depe, D., Domae, B. W., Eldin, S., Fitzgibbon, L., Flemming, A., Frederick, D. M., Gilbert, A., Hesford, B., Krieger, R., Lian, K., McKinney, E., Miller, J. P., Pedersen, C., Qu, Z., Rozario, R., Rubly, M., Seaton, R., Subramanian, A., Sundin, S. R., Tan, A., Thomlinson, D., Turner, W., Wing, G., Wong, C., Zarifian, A.
Formato: Online Artículo Texto
Lenguaje:English
Publicado: Springer Netherlands 2023
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC10335998/
https://www.ncbi.nlm.nih.gov/pubmed/37448777
http://dx.doi.org/10.1007/s11214-023-00984-w
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author Angelopoulos, V.
Zhang, X.-J.
Artemyev, A. V.
Mourenas, D.
Tsai, E.
Wilkins, C.
Runov, A.
Liu, J.
Turner, D. L.
Li, W.
Khurana, K.
Wirz, R. E.
Sergeev, V. A.
Meng, X.
Wu, J.
Hartinger, M. D.
Raita, T.
Shen, Y.
An, X.
Shi, X.
Bashir, M. F.
Shen, X.
Gan, L.
Qin, M.
Capannolo, L.
Ma, Q.
Russell, C. L.
Masongsong, E. V.
Caron, R.
He, I.
Iglesias, L.
Jha, S.
King, J.
Kumar, S.
Le, K.
Mao, J.
McDermott, A.
Nguyen, K.
Norris, A.
Palla, A.
Roosnovo, A.
Tam, J.
Xie, E.
Yap, R. C.
Ye, S.
Young, C.
Adair, L. A.
Shaffer, C.
Chung, M.
Cruce, P.
Lawson, M.
Leneman, D.
Allen, M.
Anderson, M.
Arreola-Zamora, M.
Artinger, J.
Asher, J.
Branchevsky, D.
Cliffe, M.
Colton, K.
Costello, C.
Depe, D.
Domae, B. W.
Eldin, S.
Fitzgibbon, L.
Flemming, A.
Frederick, D. M.
Gilbert, A.
Hesford, B.
Krieger, R.
Lian, K.
McKinney, E.
Miller, J. P.
Pedersen, C.
Qu, Z.
Rozario, R.
Rubly, M.
Seaton, R.
Subramanian, A.
Sundin, S. R.
Tan, A.
Thomlinson, D.
Turner, W.
Wing, G.
Wong, C.
Zarifian, A.
author_facet Angelopoulos, V.
Zhang, X.-J.
Artemyev, A. V.
Mourenas, D.
Tsai, E.
Wilkins, C.
Runov, A.
Liu, J.
Turner, D. L.
Li, W.
Khurana, K.
Wirz, R. E.
Sergeev, V. A.
Meng, X.
Wu, J.
Hartinger, M. D.
Raita, T.
Shen, Y.
An, X.
Shi, X.
Bashir, M. F.
Shen, X.
Gan, L.
Qin, M.
Capannolo, L.
Ma, Q.
Russell, C. L.
Masongsong, E. V.
Caron, R.
He, I.
Iglesias, L.
Jha, S.
King, J.
Kumar, S.
Le, K.
Mao, J.
McDermott, A.
Nguyen, K.
Norris, A.
Palla, A.
Roosnovo, A.
Tam, J.
Xie, E.
Yap, R. C.
Ye, S.
Young, C.
Adair, L. A.
Shaffer, C.
Chung, M.
Cruce, P.
Lawson, M.
Leneman, D.
Allen, M.
Anderson, M.
Arreola-Zamora, M.
Artinger, J.
Asher, J.
Branchevsky, D.
Cliffe, M.
Colton, K.
Costello, C.
Depe, D.
Domae, B. W.
Eldin, S.
Fitzgibbon, L.
Flemming, A.
Frederick, D. M.
Gilbert, A.
Hesford, B.
Krieger, R.
Lian, K.
McKinney, E.
Miller, J. P.
Pedersen, C.
Qu, Z.
Rozario, R.
Rubly, M.
Seaton, R.
Subramanian, A.
Sundin, S. R.
Tan, A.
Thomlinson, D.
Turner, W.
Wing, G.
Wong, C.
Zarifian, A.
author_sort Angelopoulos, V.
collection PubMed
description We review comprehensive observations of electromagnetic ion cyclotron (EMIC) wave-driven energetic electron precipitation using data collected by the energetic electron detector on the Electron Losses and Fields InvestigatioN (ELFIN) mission, two polar-orbiting low-altitude spinning CubeSats, measuring 50-5000 keV electrons with good pitch-angle and energy resolution. EMIC wave-driven precipitation exhibits a distinct signature in energy-spectrograms of the precipitating-to-trapped flux ratio: peaks at >0.5 MeV which are abrupt (bursty) (lasting ∼17 s, or [Formula: see text] ) with significant substructure (occasionally down to sub-second timescale). We attribute the bursty nature of the precipitation to the spatial extent and structuredness of the wave field at the equator. Multiple ELFIN passes over the same MLT sector allow us to study the spatial and temporal evolution of the EMIC wave - electron interaction region. Case studies employing conjugate ground-based or equatorial observations of the EMIC waves reveal that the energy of moderate and strong precipitation at ELFIN approximately agrees with theoretical expectations for cyclotron resonant interactions in a cold plasma. Using multiple years of ELFIN data uniformly distributed in local time, we assemble a statistical database of ∼50 events of strong EMIC wave-driven precipitation. Most reside at [Formula: see text] at dusk, while a smaller subset exists at [Formula: see text] at post-midnight. The energies of the peak-precipitation ratio and of the half-peak precipitation ratio (our proxy for the minimum resonance energy) exhibit an [Formula: see text] -shell dependence in good agreement with theoretical estimates based on prior statistical observations of EMIC wave power spectra. The precipitation ratio’s spectral shape for the most intense events has an exponential falloff away from the peak (i.e., on either side of [Formula: see text] MeV). It too agrees well with quasi-linear diffusion theory based on prior statistics of wave spectra. It should be noted though that this diffusive treatment likely includes effects from nonlinear resonant interactions (especially at high energies) and nonresonant effects from sharp wave packet edges (at low energies). Sub-MeV electron precipitation observed concurrently with strong EMIC wave-driven >1 MeV precipitation has a spectral shape that is consistent with efficient pitch-angle scattering down to ∼ 200-300 keV by much less intense higher frequency EMIC waves at dusk (where such waves are most frequent). At ∼100 keV, whistler-mode chorus may be implicated in concurrent precipitation. These results confirm the critical role of EMIC waves in driving relativistic electron losses. Nonlinear effects may abound and require further investigation.
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spelling pubmed-103359982023-07-13 Energetic Electron Precipitation Driven by Electromagnetic Ion Cyclotron Waves from ELFIN’s Low Altitude Perspective Angelopoulos, V. Zhang, X.-J. Artemyev, A. V. Mourenas, D. Tsai, E. Wilkins, C. Runov, A. Liu, J. Turner, D. L. Li, W. Khurana, K. Wirz, R. E. Sergeev, V. A. Meng, X. Wu, J. Hartinger, M. D. Raita, T. Shen, Y. An, X. Shi, X. Bashir, M. F. Shen, X. Gan, L. Qin, M. Capannolo, L. Ma, Q. Russell, C. L. Masongsong, E. V. Caron, R. He, I. Iglesias, L. Jha, S. King, J. Kumar, S. Le, K. Mao, J. McDermott, A. Nguyen, K. Norris, A. Palla, A. Roosnovo, A. Tam, J. Xie, E. Yap, R. C. Ye, S. Young, C. Adair, L. A. Shaffer, C. Chung, M. Cruce, P. Lawson, M. Leneman, D. Allen, M. Anderson, M. Arreola-Zamora, M. Artinger, J. Asher, J. Branchevsky, D. Cliffe, M. Colton, K. Costello, C. Depe, D. Domae, B. W. Eldin, S. Fitzgibbon, L. Flemming, A. Frederick, D. M. Gilbert, A. Hesford, B. Krieger, R. Lian, K. McKinney, E. Miller, J. P. Pedersen, C. Qu, Z. Rozario, R. Rubly, M. Seaton, R. Subramanian, A. Sundin, S. R. Tan, A. Thomlinson, D. Turner, W. Wing, G. Wong, C. Zarifian, A. Space Sci Rev Article We review comprehensive observations of electromagnetic ion cyclotron (EMIC) wave-driven energetic electron precipitation using data collected by the energetic electron detector on the Electron Losses and Fields InvestigatioN (ELFIN) mission, two polar-orbiting low-altitude spinning CubeSats, measuring 50-5000 keV electrons with good pitch-angle and energy resolution. EMIC wave-driven precipitation exhibits a distinct signature in energy-spectrograms of the precipitating-to-trapped flux ratio: peaks at >0.5 MeV which are abrupt (bursty) (lasting ∼17 s, or [Formula: see text] ) with significant substructure (occasionally down to sub-second timescale). We attribute the bursty nature of the precipitation to the spatial extent and structuredness of the wave field at the equator. Multiple ELFIN passes over the same MLT sector allow us to study the spatial and temporal evolution of the EMIC wave - electron interaction region. Case studies employing conjugate ground-based or equatorial observations of the EMIC waves reveal that the energy of moderate and strong precipitation at ELFIN approximately agrees with theoretical expectations for cyclotron resonant interactions in a cold plasma. Using multiple years of ELFIN data uniformly distributed in local time, we assemble a statistical database of ∼50 events of strong EMIC wave-driven precipitation. Most reside at [Formula: see text] at dusk, while a smaller subset exists at [Formula: see text] at post-midnight. The energies of the peak-precipitation ratio and of the half-peak precipitation ratio (our proxy for the minimum resonance energy) exhibit an [Formula: see text] -shell dependence in good agreement with theoretical estimates based on prior statistical observations of EMIC wave power spectra. The precipitation ratio’s spectral shape for the most intense events has an exponential falloff away from the peak (i.e., on either side of [Formula: see text] MeV). It too agrees well with quasi-linear diffusion theory based on prior statistics of wave spectra. It should be noted though that this diffusive treatment likely includes effects from nonlinear resonant interactions (especially at high energies) and nonresonant effects from sharp wave packet edges (at low energies). Sub-MeV electron precipitation observed concurrently with strong EMIC wave-driven >1 MeV precipitation has a spectral shape that is consistent with efficient pitch-angle scattering down to ∼ 200-300 keV by much less intense higher frequency EMIC waves at dusk (where such waves are most frequent). At ∼100 keV, whistler-mode chorus may be implicated in concurrent precipitation. These results confirm the critical role of EMIC waves in driving relativistic electron losses. Nonlinear effects may abound and require further investigation. Springer Netherlands 2023-07-11 2023 /pmc/articles/PMC10335998/ /pubmed/37448777 http://dx.doi.org/10.1007/s11214-023-00984-w Text en © The Author(s) 2023 https://creativecommons.org/licenses/by/4.0/Open Access This article is licensed under a Creative Commons Attribution 4.0 International License, which permits use, sharing, adaptation, distribution and reproduction in any medium or format, as long as you give appropriate credit to the original author(s) and the source, provide a link to the Creative Commons licence, and indicate if changes were made. The images or other third party material in this article are included in the article’s Creative Commons licence, unless indicated otherwise in a credit line to the material. If material is not included in the article’s Creative Commons licence and your intended use is not permitted by statutory regulation or exceeds the permitted use, you will need to obtain permission directly from the copyright holder. To view a copy of this licence, visit http://creativecommons.org/licenses/by/4.0/ (https://creativecommons.org/licenses/by/4.0/) .
spellingShingle Article
Angelopoulos, V.
Zhang, X.-J.
Artemyev, A. V.
Mourenas, D.
Tsai, E.
Wilkins, C.
Runov, A.
Liu, J.
Turner, D. L.
Li, W.
Khurana, K.
Wirz, R. E.
Sergeev, V. A.
Meng, X.
Wu, J.
Hartinger, M. D.
Raita, T.
Shen, Y.
An, X.
Shi, X.
Bashir, M. F.
Shen, X.
Gan, L.
Qin, M.
Capannolo, L.
Ma, Q.
Russell, C. L.
Masongsong, E. V.
Caron, R.
He, I.
Iglesias, L.
Jha, S.
King, J.
Kumar, S.
Le, K.
Mao, J.
McDermott, A.
Nguyen, K.
Norris, A.
Palla, A.
Roosnovo, A.
Tam, J.
Xie, E.
Yap, R. C.
Ye, S.
Young, C.
Adair, L. A.
Shaffer, C.
Chung, M.
Cruce, P.
Lawson, M.
Leneman, D.
Allen, M.
Anderson, M.
Arreola-Zamora, M.
Artinger, J.
Asher, J.
Branchevsky, D.
Cliffe, M.
Colton, K.
Costello, C.
Depe, D.
Domae, B. W.
Eldin, S.
Fitzgibbon, L.
Flemming, A.
Frederick, D. M.
Gilbert, A.
Hesford, B.
Krieger, R.
Lian, K.
McKinney, E.
Miller, J. P.
Pedersen, C.
Qu, Z.
Rozario, R.
Rubly, M.
Seaton, R.
Subramanian, A.
Sundin, S. R.
Tan, A.
Thomlinson, D.
Turner, W.
Wing, G.
Wong, C.
Zarifian, A.
Energetic Electron Precipitation Driven by Electromagnetic Ion Cyclotron Waves from ELFIN’s Low Altitude Perspective
title Energetic Electron Precipitation Driven by Electromagnetic Ion Cyclotron Waves from ELFIN’s Low Altitude Perspective
title_full Energetic Electron Precipitation Driven by Electromagnetic Ion Cyclotron Waves from ELFIN’s Low Altitude Perspective
title_fullStr Energetic Electron Precipitation Driven by Electromagnetic Ion Cyclotron Waves from ELFIN’s Low Altitude Perspective
title_full_unstemmed Energetic Electron Precipitation Driven by Electromagnetic Ion Cyclotron Waves from ELFIN’s Low Altitude Perspective
title_short Energetic Electron Precipitation Driven by Electromagnetic Ion Cyclotron Waves from ELFIN’s Low Altitude Perspective
title_sort energetic electron precipitation driven by electromagnetic ion cyclotron waves from elfin’s low altitude perspective
topic Article
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC10335998/
https://www.ncbi.nlm.nih.gov/pubmed/37448777
http://dx.doi.org/10.1007/s11214-023-00984-w
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