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Superdiffusive and ballistic propagation of protons in solar energetic particle events
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Superdi￿usive and ballistic propagation of protons in SEP events 199
100.00-6
1.00-3
10.00-3
100.00-3
1.00+0
10.00+0
Protons
[(1/(cm2 s sr MeV)]
10.00+0
100.00+0
1.00+3
10.00+3
100.00+3
1.00+6
Electrons
[1/(cm2 s sr MeV)]
1.00-3
10.00-3
100.00-3
1.00+0
10.00+0
100.00+0
1.00+3
3He
[1/(cm2 s sr MeV/n)]
1.00-9
10.00-9
100.00-9
1.00-6
10.00-6
100.00-6
0
6
12
18
24
30
36
42
48
54
60
66
72
X-Rays
[W/m2]
time(h)
10
100
1000
10000
100000
1e+006
1
10
100
e- Flux [1/(cm2 s sr MeV)]
t(h)
0.0001
0.001
0.01
0.1
1
10
1
10
100
p+ Flux [1/(cm2 s sr MeV)]
t(h)
Figure 1.2000 June 10 impulsive event.Lin-log graph of fluxes data.On the left from top to
bottom:proton flux from SOHO,electron flux from ACE/EPAM,
3
He flux from ACE/ULEIS
and X-Rays from GOES/SEM.On the right protons (top) and electrons (bottom) fit
The value of µ can be determinate using linear fit in log-log scale with slope give by
m = µ/( µ− 1):di￿erent values of µ identify di￿erent transport regimes:normal di￿usion
for µ > 3,super di￿usive transport for 2 < µ < 3,and ballistic (e.g.scatter-free) for
µ < 2.
Table 1.Summary of 2000 June 10 impulsive event
Data E
max
( MeV ) Satellite Duration (h) m µ χ
2
α Flare-coords
Protons 16.40 SOHO 50.00 -2.12 1.89 0.20 2.00 N22W38
33.00 SOHO 50.00 -2.28 1.78 0.22 2.00
Electrons 0.05 ACE 50,00 -1,18 6.70 0.36 1.00 N22W38
0.10 ACE 50.00 -1.34 3.96 0.24 1.00
0.18 ACE 50.00 -1.51 2.94 0.12 1.06
0.32 ACE 50.00 -1.62 2.61 0.09 1.39
The flare is shown by the peak present in X-rays,that is also synchronized with the
peak flux of protons and electrons.This allows us to characterize the event as impul-
sive event (Reames,1999).The slope and the calculation of the exponent in transport
equation,indicates ballistic (e.g.scatter-free) transport for protons (Fig.1,Tab.1) and
a superdi￿usive transport for electrons.Table 1 also gives the energy channels,the du-
ration of the event,and the χ
2
of the fit,and the flare coordinates.The next event
(Fig.2) is characterized by the presence of di￿erent transport type for protons in di￿er-
ent channels of energy.Electron transport is superdi￿usive.As previous events,proton
and electron fluxes are compared with
3
He flux and SXR to characterize the event as
impulsive event.Even for this event,the slope and the calculation of the exponent µ,
indicates superdi￿usive transport for both electrons and protons (Fig.2,Tab.2).
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Figure 3. Temporal evolution of coronal mass ejection (CME) as seen in the inner corona by LASCO-
Cl on 2 June 1998. The CME shows a dense knot (Pg) embedded within a large o...
From:
Proposed visible emission line space solar coronagraph
Singh, J; Prasad, B R; Venkatakrishnan, P; Sankarasubramanian, K; Banerjee, D; et
al. Current Science (Bangalore) 100. 2 (Jan 25, 2011): 167-174.
a The coronal mass ejection on February 27, 2000, observed by the LASCO C3 coronograph. The
Sun is drawn to scale. The image is a difference between two exposures taken abou...
From:
Space Weather: Physics, Effects and Predictability
Singh, A K; Siingh, Devendraa; Singh, R P. Surveys in Geophysics 31. 6 (Dec 2010): 581-
638.
One of the first images collected from the Solar Dynamics Observatory's Atmospheric Imaging
Assembly (AIA) instrument was a close-up, false-color ultraviolet view of a coron...
From:
Space Weather: Physics, Effects and Predictability
Singh, A K; Siingh, Devendraa; Singh, R P. Surveys in Geophysics 31. 6 (Dec
2010): 581-638.
Schematic of the solar-interplanetary-magnetosphere coupling during solar maximum years, during
which a coronal mass ejection is the most important source for interplanetary...
From:
Space Weather: Physics, Effects and Predictability
Singh, A K; Siingh, Devendraa; Singh, R P. Surveys in Geophysics 31. 6 (Dec
2010): 581-638.
Pie chart illustrating the number (%) of HSS of solar cycle 23 (1996 a 2007) with solar source(s),
i.e. single coronal hole (SCH), multiple coronal holes (MCH), single coron...
From:
High-Speed Solar Wind Streams during 1996-2007: Sources, Statistical
Distribution, and Plasma/Field Properties
Gupta, V; Badruddin, Badruddin. Solar Physics 264. 1 (Jun 2010): 165-188.
Total heliospheric magnetic flux estimated from in situ spacecraft observations over four complete
solar cycles. Sunspot number is shown as the black background. There is an...
From:
Galactic cosmic ray radiation hazard in the unusual extended solar
minimum between solar cycles 23 and 24
Schwadron, NA; Boyd, A J; Kozarev, K; Golightly, M; Spence, H; et al. Space Weather 8. 0 (May 22, 2010).
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Subject Terms Cme, Sun, Board, White, Mass, Ejection, Interaction, Earth Magnetosphere,
Scale, Reaching
Statistical Terms interaction
Object terms


Caption Left: Image of a coronal mass ejection from the Sun observed by the
coronograph LASCO on board the SOHO satellite. The occulted solar disc is
depicted by the white circle. Right: Illustration of a mass ejection from the Sun
and its interaction with the Earth magneto- sphere (distances not to scale).
Image Category Illustration, Figure
Title Variability of the solar spectral irradiance and energetic particles
Authors Silva-Valio, Adriana; Silva-Valio, Adriana
Publication title Proceedings of the International Astronomical Society
Volume 5
Issue S264
Pages 39-48
Number of pages 10
Publication Date Aug 2009
Publication year 2009
Year 2009
Publisher Cambridge University Press
Country of publication United Kingdom
Journal Subjects Astronomy
ISSN 1743-9213
Source type Scholarly Journals
Language of Publication English
Document Type Indexed Image
DOI 10.1605/01.301-0009443858.2010
Accession Number 301-0009443858
ProQuest Document ID 813671319
Document URL http://search.proquest.com/docview/813671319?accountid=131239
Last Updated 2010-11-26
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Caption
Figure: 4
Left: Image of a coronal mass ejection from the Sun observed by the coronograph LASCO on board the SOHO satellite. The occulted solar disc is depicted
by the white circle. Right: Illustration of a mass ejection from the Sun and its interaction with the Earth magneto- sphere (distances not to scale).
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Improved emission
spectrum from
quantum dot superluminescent
light emitting
diodes.
Li,L H;Rossetti,M;Fiore,A;Occhi,L;Velez,C.
Physica Status Solidi (b)243.15.(2006).[Duplicate]
...The size dispersion of InAs
quantum dots (QD) was optimized to
...photoluminescence (PL)
spectrum.A broad PL spectral
...QD Superluminescent
light emitting diodes with
Cited by (1) References (9)
Citation/Abstract
Find a copy
Improved emission
spectrum from
quantum dot superluminescent
light emitting
diodes.
Li,L H;Rossetti,M;Fiore,A;Occhi,L;Velez,C.Physica Status Solidi (b) 243.15 (Dec.2006):
3988-3992.[Duplicate]
...The size dispersion of InAs
quantum dots (QD) was optimized to
...photoluminescence (PL)
spectrum.A broad PL spectral
...QD Superluminescent
light emitting diodes with
Cited by (1) References (9)
Citation/Abstract
Find a copy
Photoacoustic cell incorporating a
quantum dot substrate
Fritz
,
Bernard S
;
Marcus
,
Matthew S.
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Raman scattering by porous structures with InAs
quantum dots
Milekhin, Alexander; Ursaki, Veacheslav; Sirbu, Lilian; Toropov, Alexander; Tiginyanu, Ion; et al.
Physica Status Solidi C 6. 4 (Apr. 2009): 883-885.
...of
quantum dot phonon
spectrum. Introduction of porosity in
quantum dot
...
quantum dots is explained by multiple
light reflection in the porous structure.
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Nanophotonic
quantum dot embedded in photonic crystals using a coherent
control with a high
spectrum resolution

Matsuoka, Fumiaki; Nihei, Hiroyuki; Okamoto, Atsushi.
Proceedings of SPIE - The International Society for Optical EngineeringSPIE-7223. (2009).
...the emission
spectrum from a
quantum dot near the edge
...control, confined
light near a
quantum dot embedded in
...examine the
spectrum resolution of
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Method for fabrication of saturated RGB
quantum dot light -emitting devices

Coe-Sullivan, Seth; Steckel, Jonathan S; Kim, LeeAnn; Bawendi, Moungi G; Bulovic,
Vladimir.
Proc. SPIESPIE-5739. (2005).
...color hybrid organic/inorganic
quantum dot light emitting devices (QD-LEDs) is
...color QD-LEDs with external
quantum efficiencies in excess of 1 %. Combining
...the red, green and blue regions of the
spectrum.
Cited by (3)
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Package design for producing white
light with short-wavelength LEDS and down-
conversion materials
Narendran, Nadarajah; Gu, Yimin.
...wavelength light. The short wavelength light has a spectrum with a first peak
...about 500 nm. The quantum dot material absorbs
...short wavelength light and reemits it as
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Quantum dots in processible polymers: size-tunable infrared (1000 to 1600 nm)
optical emission and sensing

Sargent, Edward H.
Proceedings of SPIESPIE-5359. (2004).
... I review light production from quantum dot nanocrystals embedded in a
...quantum size effect, the spectrum of optical emissions from the quantum dots. We
Citation/Abstract Find a copy
Hybrid CdSe-ZnS
Quantum Dot -InGaN-GaN
Quantum Well Red
Light -Emitting
Diodes
Huang, Chun-Yuan; Su, Yan-Kuin; Chen, Ying-Chih; Tsai, Ping-Chieh; Wan, Cheng-Tien; et al. IEEE
Electron Device Letters 29. 7 (July 2008): 711-713.
...CdSe-ZnS
quantum dot (QD)-InGaN-GaN
quantum well (QW) red
light -emitting diodes
...
spectrum exhibits the contribution of red
light emission to the total
light
Citation/Abstract
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Quantum-
dot research targets general illumination
Jones-Bey, Hassaun A. Laser Focus World 42. 3 (Mar 2006): 10,12-14.
...provide broad-
spectrum white
light. A difficulty
...nanocrystals or
quantum dots, optical
...portion of the
spectrum, around 380
Citation/Abstract
Full text
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(757 KB)
Quantum correlation among photons from a single
quantum dot at room
temperature
Michler, P; Imamoglu, A; Mason, M D; Carson, P J; Strouse, G F; et al. Nature 406. 6799 (31 Aug.
2000): 698-970.
...single cadmium selenide
quantum dot at room temperature. Apart
...
light source, this result proves that a single
quantum dot acts like an
...a discrete anharmonic
spectrum. In contrast, we find
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Quantum correlation among photons from a single
quantum dot at room
temperature
Michler, P; Imamoglu, A; Mason, M D; Carlson, P J. Nature 406. 6799 (31 Aug. 2000): 968-970.
...single cadmium selenide
quantum dot at room temperature. Apart
...
light source, this result proves that a single
quantum dot acts like an
...a discrete anharmonic spectrum. In contrast, we find
Citation/Abstract Find a copy
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1 Improved emission spectrum from quantum dot superluminescent light emitting
diodes.

Li, L H; Rossetti, M; Fiore, A; Occhi, L; Velez, C.
Physica Status Solidi (b)243.15. (2006). [Duplicate]
... The size dispersion of InAs quantum dots (QD) was optimized to
...photoluminescence (PL) spectrum. A broad PL spectral
...QD Superluminescent light emitting diodes with
Cited by (1) References (9)
Citation/Abstract Find a copy
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Improved emission
spectrum from
quantum dot superluminescent
light emitting
diodes.

Li, L H; Rossetti, M; Fiore, A; Occhi, L; Velez, C.
Physica Status Solidi (b)243.15. (2006). [Duplicate]
... The size dispersion of InAs
quantum dots (QD) was optimized to
...photoluminescence (PL)
spectrum. A broad PL spectral
...QD Superluminescent
light emitting diodes with
Cited by (1) References (9)
Citation/Abstract
Find a copy
Improved emission
spectrum from
quantum dot superluminescent
light emitting
diodes.
Li, L H; Rossetti, M; Fiore, A; Occhi, L; Velez, C. Physica Status Solidi (b) 243. 15 (Dec. 2006):
3988-3992. [Duplicate]

... The size dispersion of InAs
quantum dots (QD) was optimized to
...photoluminescence (PL)
spectrum. A broad PL spectral
...QD Superluminescent
light emitting diodes with
Cited by (1) References (9)
Citation/Abstract
Find a copy
Photoacoustic cell incorporating a
quantum dot substrate
Fritz, Bernard S; Marcus, Matthew S.
...excitation source, a chamber, and a
quantum dot substrate between the excitation
...
light spectrum. The
quantum dot substrate, when subjected to the
light spectrum,
Citation/Abstract
Find a copy
Controlling cavity reflectivity with a single
quantum dot
Englund, Dirk; Faraon, Andrei; Fushman, Ilya; Stoltz, Nick; Petroff, Pierre; et al. Nature 450. 7171
(Dec 6, 2007): 857-61. [Duplicate]

...the cavityquantum
dot coupling, by means of resonant
light scattering from
Citation/Abstract
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Improved emission
spectrum from
quantum dot superluminescent
light emitting
diodes.

Li, L H; Rossetti, M; Fiore, A; Occhi, L; Velez, C.
Physica Status Solidi (b)243.15. (2006). [Duplicate]
... The size dispersion of InAs
quantum dots (QD) was optimized to
...photoluminescence (PL)
spectrum. A broad PL spectral
...QD Superluminescent
light emitting diodes with
Cited by (1) References (9)
Citation/Abstract
Find a copy
Improved emission
spectrum from
quantum dot superluminescent
light emitting
diodes.
Li, L H; Rossetti, M; Fiore, A; Occhi, L; Velez, C. Physica Status Solidi (b) 243. 15 (Dec. 2006):
3988-3992. [Duplicate]

... The size dispersion of InAs
quantum dots (QD) was optimized to
...photoluminescence (PL)
spectrum. A broad PL spectral
...QD Superluminescent
light emitting diodes with
Cited by (1) References (9)
Citation/Abstract
Find a copy
Photoacoustic cell incorporating a
quantum dot substrate
Fritz, Bernard S; Marcus, Matthew S.
...excitation source, a chamber, and a
quantum dot substrate between the excitation
...
light spectrum. The
quantum dot substrate, when subjected to the
light spectrum,
Citation/Abstract
Find a copy
Controlling cavity reflectivity with a single
quantum dot
Englund, Dirk; Faraon, Andrei; Fushman, Ilya; Stoltz, Nick; Petroff, Pierre; et al. Nature 450. 7171
(Dec 6, 2007): 857-61. [Duplicate]

...the cavityquantum
dot coupling, by means of resonant
light scattering from
Citation/Abstract
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(757 KB)
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1 Improved emission spectrum from quantum dot superluminescent light emitting
diodes.

Li, L H; Rossetti, M; Fiore, A; Occhi, L; Velez, C.
Physica Status Solidi (b)243.15. (2006). [Duplicate]
... The size dispersion of InAs quantum dots (QD) was optimized to
...photoluminescence (PL) spectrum. A broad PL spectral
...QD Superluminescent light emitting diodes with
Cited by (1) References (9)
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a) Cross-sectional schematic of an IR downconversion display (not to scale). Application of an AC
voltage signal across the electrodes generates blue electroluminescence fro...
From:
Tunable Infrared Emission From Printed Colloidal Quantum Dot/Polymer
Composite Films on Flexible Substrates
Panzer, Matthew J; Wood, Vanessa; Geyer, Scott M; Bawendi, Moungi G; Bulovic, Vladimir.
Journal of Display Technology 6. 3 (Mar 2010): 90-93.
Available in full size
Color online) Secondary emission spectra (curve 2) from quantum dots photonic crystal; exciting lines
are (a) 368, (b) 385, (c) 410 and (d) 523 nm of light diodes emission; ...
From:
Linear and nonlinear optical phenomena in nanostructured photonic crystals,
filled by dielectrics or metals
Gorelik, V S. European Physical Journal - Applied Physics 49. 3 (Mar 2010): 9-9.
Available in full size
Ã
»¿Fig. 3. Variation of PL emission spectra of blends of YAG:Ce nanophosphors and CdS: Mn/ZnS
QDs with their weight ratios (YAG:Ce vs. Q_Ds) from 10:1,10:3 to 1:1. YAG:Ce...
From:
Nanocrystalline Y3Al5O12:Ce phosphor-based white light-emitting diodes
embedded with CdS:Mn/ZnS core/shell quantum dots
Materials Letters 63 (Mar 15, 2009): 614-616.
Ã
»¿Fig. 4. (a) EL spectra of blue light-pumped white LEDs using the various mixtures of nano-
YAG:Ce and QDs and (b) evolution of EL spectra of white LEDs as a function of...
From:
Nanocrystalline Y3Al5O12:Ce phosphor-based white light-emitting diodes
embedded with CdS:Mn/ZnS core/shell quantum dots
Materials Letters 63 (Mar 15, 2009): 614-616.
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Subject Terms Online, Tryptophan, Emissions, Tagging, Excitation, Transients, Wavelengths,
Detection, Quantum Dots, Aqueous, Solution, Spectra, Room Temperature,
Quenching, lifetime, Pair
Object terms


Caption Color online) (a) Spectral overlap between the donor (tryptophan in HSA,
Trp214) emission and acceptor (CdS tagged with HSA) excitation. (b)
Picosecond-resolved inuo- rescence transients of Trp214 in HSA (excitation
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Figure: 18
Color online) (a) Spectral overlap between the donor (tryptophan in HSA, Trp214) emission and acceptor (CdS tagged with HSA) excitation. (b)
Picosecond-resolved inuo- rescence transients of Trp214 in HSA (excitation wavelength 299 nm and detection wavelength 360 nm) in absence and pres-
ence of CdS quantum dots in aqueous solution. Reprinted with permission from R. Sarkar, S.S. Narayanan, L.-O.
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Subject Terms Online, Tryptophan, Emissions, Tagging, Excitation, Transients, Wavelengths,
Detection, Quantum Dots, Aqueous, Solution, Spectra, Room Temperature,
Quenching, lifetime, Pair
Object terms


Caption Color online) (a) Spectral overlap between the donor (tryptophan in HSA,
Trp214) emission and acceptor (CdS tagged with HSA) excitation. (b)
Picosecond-resolved inuo- rescence transients of Trp214 in HSA (excitation
Indexing (Details)
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Figure: 18
Color online) (a) Spectral overlap between the donor (tryptophan in HSA, Trp214) emission and acceptor (CdS tagged with HSA) excitation. (b)
Picosecond-resolved inuo- rescence transients of Trp214 in HSA (excitation wavelength 299 nm and detection wavelength 360 nm) in absence and pres-
ence of CdS quantum dots in aqueous solution. Reprinted with permission from R. Sarkar, S.S. Narayanan, L.-O.
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Figure 3.
Enhanced control over
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June 22 2011
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Radial velocity imagery from 1ADG PPI scan of the (a) lidar and (b) EDR map at around 1730 UTC 24 Aug 2003.
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