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Paper Citation Record · LEDGER

Influence of Magnetospheric Plasma Environment on Surface Charging of the Lunar South Pole

As of 14 August 2026, this Paper Citation Record lists 29 of 29 outbound references and 0 inbound Pith citation observations for arXiv:2607.13510.

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pith.paper-citation-record.v1
2607.13510 v1

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measured 29 of 29 reference resolution

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measured 29 of 29 standing notices

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Outbound references

Observation 9f1c49d7-ef19-45ff-b464-de44dac5d88b · outbound

This paper cites Extreme lunar surface charging during solar energetic particle events.

Influence of Magnetospheric Plasma Environment on Surface Charging of the Lunar South Pole Extreme lunar surface charging during solar energetic particle events

Reference 1

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Observation 56b38f42-64eb-4725-8aed-5d4dcc176c1b · outbound

This paper cites A comparison of ARTEMIS observations and particle- in-cell modeling of the lunar photoelectron sheath in the terrestrial magnetotail.

Influence of Magnetospheric Plasma Environment on Surface Charging of the Lunar South Pole A comparison of ARTEMIS observations and particle- in-cell modeling of the lunar photoelectron sheath in the terrestrial magnetotail

Reference 2

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Observation 16f208ed-0107-41e2-8fda-44c26ab4c1d5 · outbound

This paper cites Photoemission and electrostatic potentials on the day- side lunar surface in the terrestrial magnetotail lobes.

Influence of Magnetospheric Plasma Environment on Surface Charging of the Lunar South Pole Photoemission and electrostatic potentials on the day- side lunar surface in the terrestrial magnetotail lobes

Reference 3

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Observation 57b7941a-0c01-4fb4-94ec-c5f027530954 · outbound

This paper cites Kaguya observations of the lunar wake in the terrestrial foreshock: Surface potential change by bow-shock reflected ions.

Influence of Magnetospheric Plasma Environment on Surface Charging of the Lunar South Pole Kaguya observations of the lunar wake in the terrestrial foreshock: Surface potential change by bow-shock reflected ions

Reference 4

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Observation 959fa084-671c-4696-a8ae-eef96491ce90 · outbound

This paper cites Complex electric fields near the lunar terminator: The near-surface wake and accelerated dust.

Influence of Magnetospheric Plasma Environment on Surface Charging of the Lunar South Pole Complex electric fields near the lunar terminator: The near-surface wake and accelerated dust

Reference 5

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Observation 1b4efbf1-5fb5-4e03-afda-9b59e47778ac · outbound

This paper cites Lunar Prospector measurements of secondary electron emission from lunar regolith.

Influence of Magnetospheric Plasma Environment on Surface Charging of the Lunar South Pole Lunar Prospector measurements of secondary electron emission from lunar regolith

Reference 6

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Observation 71517bdc-dee5-40c5-8e8c-8e2ec150b850 · outbound

This paper cites Dependence of lunar surface charging on solar wind plasma conditions and solar irradiation.

Influence of Magnetospheric Plasma Environment on Surface Charging of the Lunar South Pole Dependence of lunar surface charging on solar wind plasma conditions and solar irradiation

Reference 7

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Observation c735b05a-159f-4bd7-85d8-9ea6089fed62 · outbound

This paper cites Formation of lunar surface water associated with high-energy electrons in Earth’s magnetotail.

Influence of Magnetospheric Plasma Environment on Surface Charging of the Lunar South Pole Formation of lunar surface water associated with high-energy electrons in Earth’s magnetotail

Reference 8

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Observation c94ded40-8f05-4f39-ad68-e01d040bceec · outbound

This paper cites Lunar Prospector observations of the electrostatic poten- tial of the lunar surface and its response to incident currents.

Influence of Magnetospheric Plasma Environment on Surface Charging of the Lunar South Pole Lunar Prospector observations of the electrostatic poten- tial of the lunar surface and its response to incident currents

Reference 9

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Observation 271365bc-0edd-4ca0-8227-e602bb994d4f · outbound

This paper cites First remote measurements of lunar surface charg- ing from ARTEMIS: Evidence for nonmonotonic sheath potentials above the dayside surface.

Influence of Magnetospheric Plasma Environment on Surface Charging of the Lunar South Pole First remote measurements of lunar surface charg- ing from ARTEMIS: Evidence for nonmonotonic sheath potentials above the dayside surface

Reference 10

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Observation fe24b340-fb1d-4e1a-91c3-ea4fe01e157d · outbound

This paper cites ARTEMIS observations of lunar dayside plasma in the terrestrial magnetotail lobe.

Influence of Magnetospheric Plasma Environment on Surface Charging of the Lunar South Pole ARTEMIS observations of lunar dayside plasma in the terrestrial magnetotail lobe

Reference 11

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Observation c57a084d-85d7-4ba2-a818-4a001a581f38 · outbound

This paper cites ARTEMIS observations of lunar nightside surface potentials in the magnetotail lobes: Evidence for micrometeoroid impact charging.

Influence of Magnetospheric Plasma Environment on Surface Charging of the Lunar South Pole ARTEMIS observations of lunar nightside surface potentials in the magnetotail lobes: Evidence for micrometeoroid impact charging

Reference 12

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Observation b5852f2a-721c-41d7-bd30-8ce0b209b89c · outbound

This paper cites Character and spatial distribution of mineralogy at the lunar south polar region.

Influence of Magnetospheric Plasma Environment on Surface Charging of the Lunar South Pole Character and spatial distribution of mineralogy at the lunar south polar region

Reference 13

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Observation 57562e87-2b3f-4e56-ad69-59224a236837 · outbound

This paper cites Loss of solar wind plasma neutrality and affect on surface potentials near the lunar terminator and shadowed polar regions.

Influence of Magnetospheric Plasma Environment on Surface Charging of the Lunar South Pole Loss of solar wind plasma neutrality and affect on surface potentials near the lunar terminator and shadowed polar regions

Reference 14

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Observation 77dae1be-1456-4fcf-ad35-f4930ce83706 · outbound

This paper cites Anticipated electrical environment within permanently shadowed lunar craters.

Influence of Magnetospheric Plasma Environment on Surface Charging of the Lunar South Pole Anticipated electrical environment within permanently shadowed lunar craters

Reference 15

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Observation b96b30a8-b96a-43f8-b436-2f088ea3f943 · outbound

This paper cites Plasma wake simulations and object charging in a shadowed lunar crater during a solar storm.

Influence of Magnetospheric Plasma Environment on Surface Charging of the Lunar South Pole Plasma wake simulations and object charging in a shadowed lunar crater during a solar storm

Reference 16

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Observation cc0b1d6b-952e-482a-b61f-10ec20e3ff72 · outbound

This paper cites Fully kinetic pife-pic simulations of plasma charging at lunar craters.

Influence of Magnetospheric Plasma Environment on Surface Charging of the Lunar South Pole Fully kinetic pife-pic simulations of plasma charging at lunar craters

Reference 17

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Observation 438f779a-46c4-4ca6-aca0-e4550fe8cfd2 · outbound

This paper cites Distribution of charged lunar dust in the south polar region of the moon.

Influence of Magnetospheric Plasma Environment on Surface Charging of the Lunar South Pole Distribution of charged lunar dust in the south polar region of the moon

Reference 18

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Observation a6b22145-3501-4e36-b9e3-9fed5bef150f · outbound

This paper cites Numerical simulation of the lunar polar environment: Implications for rover exploration challenge.

Influence of Magnetospheric Plasma Environment on Surface Charging of the Lunar South Pole Numerical simulation of the lunar polar environment: Implications for rover exploration challenge

Reference 19

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Observation 4ce18c8a-7b07-41e3-b72f-fc563719c51c · outbound

This paper cites Theoretical analysis of the electric potential and the electrostatic dust transport around the Shackleton crater in the Lunar south pole region.

Influence of Magnetospheric Plasma Environment on Surface Charging of the Lunar South Pole Theoretical analysis of the electric potential and the electrostatic dust transport around the Shackleton crater in the Lunar south pole region

Reference 20

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Observation 5cab6214-f304-4bf8-8542-78bbaf8429da · outbound

This paper cites A new view of the lunar south pole from the lunar orbiter laser altimeter (LOLA).

Influence of Magnetospheric Plasma Environment on Surface Charging of the Lunar South Pole A new view of the lunar south pole from the lunar orbiter laser altimeter (LOLA)

Reference 21

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Observation f90e2151-ba19-4ace-b152-127a7db1e560 · outbound

This paper cites Topographic Map of the Moon’s South Pole (85°S to Pole).

Influence of Magnetospheric Plasma Environment on Surface Charging of the Lunar South Pole Topographic Map of the Moon’s South Pole (85°S to Pole)

Reference 22

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Observation 429cebda-4b1d-4335-80e1-a69c21b70e5a · outbound

This paper cites Inversion Analysis of GEO Plasma Environmental Parameters Based on BP Neural Network.

Influence of Magnetospheric Plasma Environment on Surface Charging of the Lunar South Pole Inversion Analysis of GEO Plasma Environmental Parameters Based on BP Neural Network

Reference 23

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Observation e2dfa952-0455-4470-a184-16c1b12bd8a2 · outbound

This paper cites Study on the linkages between microstructure and permeability of porous media using pore network and BP neural network.

Influence of Magnetospheric Plasma Environment on Surface Charging of the Lunar South Pole Study on the linkages between microstructure and permeability of porous media using pore network and BP neural network

Reference 24

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Observation 4525c344-f04c-4daa-8616-00b8341a45cb · outbound

This paper cites Three-dimensional simulation of surface charging in meteorite craters on rotating asteroids.

Influence of Magnetospheric Plasma Environment on Surface Charging of the Lunar South Pole Three-dimensional simulation of surface charging in meteorite craters on rotating asteroids

Reference 25

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Observation 5b093705-aa10-4f8c-aafd-1d06e67cb823 · outbound

This paper cites Impact of secondary and backscattered electron cur- rents on absolute charging of structures used in spacecraft.

Influence of Magnetospheric Plasma Environment on Surface Charging of the Lunar South Pole Impact of secondary and backscattered electron cur- rents on absolute charging of structures used in spacecraft

Reference 26

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Observation 311c5ace-1878-4900-a341-7e3b92a4c8ca · outbound

This paper cites A new charging model for spacecraft exposed dielectric (SICCE).

Influence of Magnetospheric Plasma Environment on Surface Charging of the Lunar South Pole A new charging model for spacecraft exposed dielectric (SICCE)

Reference 27

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Observation 8684661c-866c-448f-83d5-62f9bae68e7f · outbound

This paper cites Characterisation of potential landing sites for the European Space Agency’s Lunar Lander project.

Influence of Magnetospheric Plasma Environment on Surface Charging of the Lunar South Pole Characterisation of potential landing sites for the European Space Agency’s Lunar Lander project

Reference 28

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Observation 6c0c58cd-e11c-4e39-bfcc-7e8c3d13db3f · outbound

This paper cites Study on Lunar Surface Charging Effects Induced by Charged Particle Flows in the Earth’s Magnetotail Lobes and Spatial Distribution Characteristics of Charged Lunar Dust.

Influence of Magnetospheric Plasma Environment on Surface Charging of the Lunar South Pole Study on Lunar Surface Charging Effects Induced by Charged Particle Flows in the Earth’s Magnetotail Lobes and Spatial Distribution Characteristics of Charged Lunar Dust

Reference 29

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