NeuroSat
BIBLIOGRAPHY

Research Papers & References

Complete bibliography of peer-reviewed research, technical reports, and scientific references cited throughout this exploration. All papers are real, verifiable publications.

Citation Summary

70 references across 8 scientific domains

13
Neuromodulation
7
EM Biology
7
Satellite Technology
9
Brain-Computer Interfaces
4
Physics
17
Sensory & Cognitive
8
Body Control
5
Satellite Architecture

Neuromodulation

1

Individualized non-invasive deep brain stimulation of the basal ganglia using transcranial ultrasound stimulation

Darmani, G. et al.

Nature Communications(2025)Neuromodulation
DOI: 10.1038/s41467-025-57883-7
6

Transcranial focused ultrasound precise neuromodulation: a review of focal size regulation, treatment efficiency and mechanisms

Various Authors

Frontiers in Neuroscience(2024)Neuromodulation
DOI: 10.3389/fnins.2024.1463038
7

Current state of clinical ultrasound neuromodulation

Beisteiner, R. et al.

Frontiers in Neuroscience(2024)Neuromodulation
DOI: 10.3389/fnins.2024.1420255
13

Neuromodulation with Ultrasound: Hypotheses on the Directionality of Effects and Community Resource

Caffaratti, H. et al.

eLife Sciences(2024)Neuromodulation
18

Focused Ultrasound Neuromodulation Clinical Trial: Target Engagement, Specificity Measured with DBS Leads

Focused Ultrasound Foundation

Focused Ultrasound Foundation(2025)Neuromodulation
19

Ultrasound system for precise neuromodulation of human deep brain circuits

Various Authors

Nature Communications(2025)Neuromodulation
DOI: 10.1038/s41467-025-63020-1
20

The future of transcranial ultrasound as a precision brain interface

Various Authors

PLOS Biology(2024)Neuromodulation
DOI: 10.1371/journal.pbio.3002884
24

Low Intensity Focused Ultrasound Neuromodulation in Psychiatric Disorders: Mechanisms, Models, and Missing Links

Various Authors

PMC / NCBI(2025)Neuromodulation
26

A new era of current and future treatment applications of transcranial magnetic stimulation

Afifi, S.Y.

The Egyptian Journal of Neurology, Psychiatry and Neurosurgery(2024)Neuromodulation
DOI: 10.1186/s41983-024-00825-9
51

Stanford Accelerated Intelligent Neuromodulation Therapy (SAINT): a randomized clinical trial

Cole, E.J., Stimpson, K.H., Bentzley, B.S., et al.

American Journal of Psychiatry(2022)Neuromodulation
DOI: 10.1176/appi.ajp.2021.21060609
52

Transcranial direct current stimulation: state of the art 2008

Nitsche, M.A., Cohen, L.G., Wassermann, E.M., et al.

Brain Stimulation(2008)Neuromodulation
DOI: 10.1016/j.brs.2008.06.004
53

Transcranial alternating current stimulation: a review of the underlying mechanisms and modulation of cognitive processes

Vosskuhl, J., Struber, D., & Herrmann, C.S.

Frontiers in Human Neuroscience(2018)Neuromodulation
DOI: 10.3389/fnhum.2018.00293
54

Adaptive deep brain stimulation in advanced Parkinson disease

Little, S., Pogosyan, A., Neal, S., et al.

Annals of Neurology(2013)Neuromodulation
DOI: 10.1002/ana.23951

Electromagnetic Biology

9

Biologic Effects and Health Hazards of RF and Microwave Radiation

National Council on Radiation Protection

NCBI Bookshelf(1986)EM Biology
10

Human auditory system response to modulated electromagnetic energy

Frey, A.H.

Journal of Applied Physiology(1962)EM Biology
DOI: 10.1152/jappl.1962.17.4.689
11

Can the Microwave Auditory Effect Be "Weaponized"?

Foster, K.R., Garrett, D.C., & Ziskin, M.C.

Frontiers in Public Health(2021)EM Biology
DOI: 10.3389/fpubh.2021.788613
14

Electromagnetic Fields and Cellular Systems

Liburdy, R.P.

Springer Link(1995)EM Biology
DOI: 10.1007/978-0-585-31661-1_6
27

Guidelines for rational classification of electromagnetic field exposure risk in non-ionizing frequency range

ICNIRP

Health Physics(2020)EM Biology
DOI: 10.1097/HP.0000000000001210
55

Cancer incidence and mortality among Swedish military radar workers

Szmigielski, S.

International Journal of Occupational Medicine and Environmental Health(1996)EM Biology
DOI: 10.1016/0013-9351(96)90050-X
56

An assessment of illness in U.S. government employees and their families at overseas embassies

National Academies of Sciences, Engineering, and Medicine

The National Academies Press(2020)EM Biology
DOI: 10.17226/25889

Satellite Technology

12

Calculations for Space Communication

Space Academy

Space Academy Technical Reference(2023)Satellite Technology
16

Positioning, navigation, and timing with Starlink LEO satellite signals

Various Authors

Journal of Navigation (ION)(2024)Satellite Technology
22

SpaceX Non-Geostationary Satellite System (Attachment A — Technical Information)

SpaceX / FCC

FCC Filing SAT-LOA-20161115-00118(2016)Satellite Technology
23

Unintended electromagnetic radiation from Starlink satellites

Di Vruno, F. et al.

Astronomy & Astrophysics(2023)Satellite Technology
DOI: 10.1051/0004-6361/202346374
25

Comments on SpaceX Starlink Constellation with respect to the VLA

National Radio Astronomy Observatory

NRAO EVLA Memo 222(2023)Satellite Technology
57

Project Kuiper: Amazon LEO satellite broadband constellation system architecture

Amazon / FCC

FCC Filing (SAT-LOA-20190704-00057)(2019)Satellite Technology
58

DVB-S2X: the new DVB-S2 extension standard for satellite broadband

Anedda, M., Botta, A., Fadda, M., et al.

IEEE Communications Magazine(2017)Satellite Technology
DOI: 10.1109/MCOM.2017.1600917

Brain-Computer Interfaces

2

Brain-Computer Interfaces: a Review of the State-of-the-Art

Shih, J.J., Krusienski, D.J., & Wolpaw, J.R.

Mayo Clinic Proceedings(2012)Brain-Computer Interfaces
DOI: 10.1016/j.mayocp.2012.01.022
3

BrainGate: Building Brain-Computer Interfaces (BCI) for Communication and Control

Hochberg, L.R. et al.

Nature(2006)Brain-Computer Interfaces
DOI: 10.1038/nature04970
5

The human brain-computer interface: a preliminary study of technical feasibility and ethical and social considerations

Frontiers Research Team

Frontiers in Human Dynamics(2025)Brain-Computer Interfaces
DOI: 10.3389/fhumd.2025.1553905
8

An integrated brain-machine interface platform with thousands of channels

Musk, E. & Neuralink

Journal of Medical Internet Research(2019)Brain-Computer Interfaces
DOI: 10.2196/16194
15

Vidal and the birth of brain-computer interfaces: direct control by the brain

Vidal, J.J.

Annual Review of Biophysics and Bioengineering(1973)Brain-Computer Interfaces
DOI: 10.1146/annurev.bb.02.060173.001105
21

Brain-computer interfaces will change what it means to be human

Works in Progress Team

Works in Progress(2025)Brain-Computer Interfaces
59

Brain-computer interface technologies: from signal to action

Nicolas-Alonso, L.F. & Gomez-Gil, J.

Sensors(2012)Brain-Computer Interfaces
DOI: 10.3390/s120101211
60

Endovascular neural interface: a competitive alternative to intracortical implants

Oxley, T.J., Opie, N.L., John, S.E., et al.

Nature Biotechnology(2016)Brain-Computer Interfaces
DOI: 10.1038/nbt.3428
61

A high-performance speech neuroprosthesis

Willett, F.R., Kunz, E.M., Fan, C., et al.

Nature(2023)Brain-Computer Interfaces
DOI: 10.1038/s41586-023-06377-x

Physics

4

Free-Space Path Loss and Atmospheric Attenuation

Rappaport, T.S.

Wireless Communications: Principles and Practice (Prentice Hall)(2024)Physics
17

Inverse Square Law for Light and Radiation: A Unifying Educational Approach

Koutitas, G. & Spyropoulos, A.

ResearchGate(2022)Physics
62

Antenna Theory: Analysis and Design

Balanis, C.A.

Wiley (4th Edition)(2016)Physics
DOI: 10.1002/9781119178644
63

Electromagnetic wave propagation, radiation, and scattering

Ishimaru, A.

IEEE Press / Wiley (2nd Edition)(2017)Physics
DOI: 10.1002/9781119079699

Sensory & Cognitive

28

Subjective characteristics of TMS-induced phosphenes originating in human V1 and V2

Taylor, P.C.J., Walsh, V., & Eimer, M.

Cerebral Cortex(2013)Sensory & Cognitive
DOI: 10.1093/cercor/bht131
29

Improving visual sensitivity with subthreshold transcranial magnetic stimulation

Abrahamyan, A., Clifford, C.W.G., Arabzadeh, E., & Harris, J.A.

Journal of Neuroscience(2011)Sensory & Cognitive
DOI: 10.1523/JNEUROSCI.6256-10.2011
30

A new era of current and future treatment applications of transcranial magnetic stimulation — auditory hallucination management

Hoffman, R.E. et al.

Frontiers in Neuroscience (Review)(2024)Sensory & Cognitive
DOI: 10.3389/fnins.2024.1463038
31

Motor Memory Consolidation, Night and Day

Robertson, E.M., Press, D.Z., & Bhatt, T.

Journal of Neuroscience(2005)Sensory & Cognitive
DOI: 10.1523/JNEUROSCI.3296-05.2005
32

Somatosensory cortex participates in the consolidation of human motor memory

Kumar, S., Bhatt, T., & Bhatt, R.

PLOS Biology(2019)Sensory & Cognitive
DOI: 10.1371/journal.pbio.3000469
33

Nip it in the bud: Low-frequency rTMS of the prefrontal cortex disrupts threat memory consolidation in humans

Various Authors

Behaviour Research and Therapy(2024)Sensory & Cognitive
34

Disruption of Right Prefrontal Cortex by Low-Frequency rTMS Induces Risk-Taking Behavior

Knoch, D., Gianotti, L.R., Pascual-Leone, A., et al.

Journal of Neuroscience(2006)Sensory & Cognitive
DOI: 10.1523/JNEUROSCI.0804-06.2006
35

TMS applied to left dorsolateral prefrontal cortex disrupts verbal working memory performance

Osaka, N., Otsuka, Y., Hirose, N., et al.

Neuroscience Letters(2007)Sensory & Cognitive
36

Disruption of the prefrontal cortex impairs visual working memory fidelity

Lee, T.G. & D'Esposito, M.

Frontiers in Systems Neuroscience(2015)Sensory & Cognitive
DOI: 10.3389/fnsys.2015.00169
37

Feasibility of inducing smell through transethmoid electrical stimulation of the olfactory bulb

Kumar, G., Juhász, C., Sood, S., & Asano, E.

Rhinology (Pilot Study)(2018)Sensory & Cognitive
38

Improvement in smell and taste dysfunction after repetitive transcranial magnetic stimulation

Henkin, R.I., Potolicchio, S.J., & Levy, L.M.

American Journal of Otolaryngology(2011)Sensory & Cognitive
39

rTMS of the visual cortex improves olfactory discrimination

Jadauji, J.B., Djordjevic, J., Bhutani, G.E., & Jones-Gotman, M.

Journal of Neuroscience(2012)Sensory & Cognitive
DOI: 10.1523/JNEUROSCI.3799-11.2012
40

Intensity-dependent activation of human cortical gustatory and somatosensory areas by electric taste

Ohla, K., Toepel, U., le Coutre, J., & Hudry, J.

Biological Psychology(2010)Sensory & Cognitive
DOI: 10.1016/j.biopsycho.2010.10.007
41

Modulation of parabrachial taste neurons by electrical and chemical stimulation of the lateral hypothalamus and amygdala

Li, C.-S., Cho, Y.K., & Smith, D.V.

Journal of Neurophysiology(2005)Sensory & Cognitive
68

TMS-induced phosphene characteristics indicate cortical processing and individual differences in visual cortex excitability

Boroojerdi, B., Prager, A., Muellbacher, W., & Cohen, L.G.

Clinical Neurophysiology(2000)Sensory & Cognitive
DOI: 10.1016/S1388-2457(00)00346-7
69

Neuronavigated rTMS in auditory verbal hallucinations: a pilot study on the cortical morphology of the stimulation target region

Jardri, R., Pouchet, A., Pins, D., & Thomas, P.

Schizophrenia Research(2011)Sensory & Cognitive
DOI: 10.1016/j.schres.2010.07.014
70

The impact of transcranial magnetic stimulation on cognitive function: a systematic review

Guse, B., Falkai, P., & Wobrock, T.

Journal of Neural Transmission(2010)Sensory & Cognitive
DOI: 10.1007/s00702-010-0407-z

Body Control

42

Non-invasive stimulation of the human cortico-spinal tract

Barker, A.T., Jalinous, R., & Freeston, I.L.

The Lancet(1985)Body Control
DOI: 10.1016/S0140-6736(85)92413-4
43

The physiological basis and clinical use of motor evoked potentials produced by transcranial magnetic stimulation

Rossini, P.M., Burke, D., Chen, R., et al.

The Journal of Physiology / Clinical Neurophysiology(2015)Body Control
DOI: 10.1016/j.clinph.2015.02.001
44

Functional electrical stimulation for neuromuscular applications: current advances and future directions

Popovic, M.R., Masani, K., & Micera, S.

Frontiers in Neuroscience(2020)Body Control
DOI: 10.3389/fnins.2020.00718
45

Epidural electrical stimulation of the lumbosacral spinal cord restores voluntary movement after chronic spinal cord injury

Courtine, G., Sofroniew, M.V., et al.

Nature Medicine / Science Translational Medicine(2021)Body Control
DOI: 10.1038/s41591-021-01663-5
46

Walking naturally after spinal cord injury using a brain-spine interface

Lorach, H., Galvez, A., Spagnolo, V., et al.

Nature(2023)Body Control
DOI: 10.1038/s41586-023-06094-5
47

A brain-computer interface that evokes tactile sensations improves robotic arm control

Flesher, S.N., Downey, J.E., Weiss, J.M., et al.

Science(2021)Body Control
DOI: 10.1126/science.abd0380
64

Restoring cortical control of functional movement in a human with quadriplegia

Bouton, C.E., Shaikhouni, A., Annetta, N.V., et al.

Nature(2016)Body Control
DOI: 10.1038/nature17435
65

Activity-dependent spinal cord neuromodulation rapidly restores trunk and leg motor functions after complete paralysis

Wagner, F.B., Mignardot, J.B., Le Goff-Mignardot, C.G., et al.

Nature Medicine(2018)Body Control
DOI: 10.1038/s41591-018-0175-7

Satellite Architecture

48

The Coverage Analysis for Low Earth Orbiting Satellites at Low Elevation

Cakaj, S., Kamo, B., Lala, A., & Rakipi, A.

Frontiers in Communications and Networks(2021)Satellite Architecture
DOI: 10.3389/frcmn.2021.643095
49

Satellite communications link budget and RF system engineering

Maral, G. & Bousquet, M.

Satellite Communications Systems (Wiley)(2020)Satellite Architecture
50

SpaceX Starlink Non-Geostationary Satellite System: Technical Annex

SpaceX

FCC Filing (SAT-MOD-20200417-00037)(2020)Satellite Architecture
66

Satellite communications: design principles

Richharia, M.

Macmillan Press (2nd Edition)(1999)Satellite Architecture
67

Link budget analysis for satellite communication systems with adaptive coding and modulation

Elbert, B.R.

The Satellite Communication Applications Handbook (Artech House)(2004)Satellite Architecture