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@ f l i p . t a n e d o AWLC 2020
electronā€“positron production
of dark sector particles
Flip Tanedo
October 20, 2020
at a future linear collider
Americas Workshop
On Linear Colliders 2020
@ f l i p . t a n e d o AWLC 2020 22
2
Ask not what a linear collider can do
for your favorite dark sectorsā€¦
ā€¢ Clean machine: ~10x the tracking of the LHC, excellent vertexing

ā€¢ No multiple collisions/pileup; no need to trigger

ā€¢ Control of initial state polarization
ILC TDR v2: 1306.6352
@ f l i p . t a n e d o AWLC 2020 22
3
Ask not what a linear collider can do
for your favorite dark sectors,
Ask what you can do for dark sectors
with a linear collider.
What studies can be done now to help us maximize a linear collider
as a ā€œlamp postā€ for searching for dark sectors.
@ f l i p . t a n e d o AWLC 2020 22
Dark Sectors at a Linear Collider
Adapting James Carville (1992)
1. Change vs. more of the same
2. Itā€™s the economy, stupid
3. Donā€™t forget healthcare
https://en.wikipedia.org/wiki/It's_the_economy,_stupid
4
what you would cover from a WIMP search
mediator
beam polarization
(new possibilities)
@ f l i p . t a n e d o AWLC 2020 22
Dark Sector
ā€œItā€™s the mediator, stupidā€ (paraphrasing J. Carville)
Mediator massā€Ø
Mediator spinā€Ø
Coupling to visible matter (strength and portal)ā€Ø
Coupling to dark matter
5
Visible Matter
Mediator
Dark Matter
W H AT W E W A N T :
( F O R E A C H M E D I AT O R )
S M I N E R T S TAT E
e.g. for thermal freeze out
large range; ballpark: below DM mass, above ~10 MeV (e.g. BBN)
e.g. to avoid overclosure
e.g. could benchmark to 100 MeV mediator, 100 GeV dark matter
linear collider?
@ f l i p . t a n e d o AWLC 2020 22
Some favorite portals
(Near-)Renormalizable
Other options: sterile neutrinoā€Ø
& other ā€œt-channelā€ mediators
6
spin-1
spin-0
CP Even
CP Mixed
CP Even
CP Odd
kinetic mixing
kinetic mixing

+ mass mixing
Higgs portal
e.g. anomaly
e.g. dark photon
e.g. dark Higgs
e.g. axion-like particle
e.g. dark Z
S-CHANNEL
T-CHANNEL
see e.g. 2005.01515 (rev)
see e.g. 1203.2947
see e.g. 1512.04119
see e.g. 1808.10323
Do we have a systematic study of these
cases for a linear collider?
@ f l i p . t a n e d o AWLC 2020 22
Reminder of 2010
Missing energy/mono-X: EFT vs. Simplified Models
EFT/Contact: Maverick DM: 1002.4137, UCI: 1005.1286, 1008.1783; FNAL: 1005.3797, 1103.0240
7
Simplified Models: Busoni et al: 1307.2253, 1402.1275 (s), 1405.3101 (t); UCI: 1111.2359, An et al: 1202.2894,
Frandsen et al: 1204.3839, Buchmuller et al: 1308.6799, 2014 report: 1409.2893, 2015 report: 1506.03116, Albert
et al: 1607.06680, De Simone and Jacques review: 1603.08002, Kahlhoefer review: 1702.02430, [many others]
TAG
MISSING ET
TAG
MISSING ET
MEDIATOR
contact int. / ā€œEFTā€ / ā€œWIMPā€ simplified model / ā€œUV modelā€
@ f l i p . t a n e d o AWLC 2020 22
Low-Hanging Fruit
Bump hunting?
e.g. Leptophilic mediators (gauged LĪ¼ - Le) ā€Ø
How well can we do with displaced vertices?
Contact interactions: see, e.g. hep-ph/0111017, 1211.2254, 1211.4008, 2001.03011
8
TAG
MISSING ET
MEDIATOR
AND PT
MEDIATOR
VISIBLE
VISIBLE
RADIATIVE RETURN
See Jenny Listā€™s talkā€Ø
& e.g. 2001.03011
What limits mediator mass
determination for low masses?
Can we measure partial widths?
@ f l i p . t a n e d o AWLC 2020 22
Low-Hanging Fruit
Dark Sectors at Lepton Colliders
ILC TDR Vol. 2: 1306.6352
9
FOR PT
MEDIATOR
VISIBLE
VISIBLE
What limits mediator mass
determination for low masses?
Can we measure partial widths?
UV Motivated (e.g. GUT). What happens forā€Ø
lower masses and smaller couplings?
e.g. Leptophilic mediators (gauged LĪ¼ - Le) ā€Ø
How well can we do with displaced vertices?
@ f l i p . t a n e d o AWLC 2020 22
Reminder: Chirality & Mediator Spin
L and R refer to ā€œam I an electroweak doublet or singlet?"
Each term corresponds to one of the four beam polarization configurations.ā€Ø
Assuming: negligible electron mass limit, 100% polarization
10
spin-1
spin-0
does not mix EW doublet/singlet
mixes EW doublet/singlet
POSITRONS
ELECTRONS ā€œSPIN-1 COUPLINGā€ "PARITYā€
@ f l i p . t a n e d o AWLC 2020 22
Polarization
For argumentā€™s sake, assume chiral limit and 100% polarized beams
Homework: do the realistic case; may be a good Snowmass white paper
In addition to kinematics (cos Īø dependence), one could turn on/oļ¬€ the
resonance by changing the polarization of the beam.

Measure the chiral couplings (dark photon vs. dark Z)?
Polarization in contact interaction approach: hep-ph/0111017, 1211.4008; Polarization for ILC physics: 1801.02840
11
SAME
CHIRALITY
OPPOSITE
CHIRALITY
SPIN-1 SPIN-0
@ f l i p . t a n e d o AWLC 2020 22
Do this for spin-1 mediators?
Map dark Z to chiral couplings
A generic spin-1 portal has
kinetic mixing and mass mixing.
The ratio of the two determines
the how vector-like or chiral the
fermion couplings are.
Potential of the ILC to Discover New Particles: 1702.05333
12
... - gZ
R/gZ
R
-330% -20% -10% 10% 20%
6
gZ
L /gZ
L
-20%
-10%
10%
20%
v
SM
uLight top partners [35]
u
Light top partners
Alternative 1 [75]
u
Light top partners Alternative 2 [75]
uLittle Higgs [76]
uRS with Custodial SU(2) [28]
uComposite Top [77]
u
5D Emergent [78]
u
4D Composite Higgs Models [79]
u
RS with Z-Zā€™ Mixing [27]
ILC Precision
Figure 4: Predictions of several Randall-Sundrum (RS) models and/or compositeness or
Little Higgs models on the deviations of the left- and right-handed couplings of the t quark
to the Z0
boson. The ellipse in the frame in the upper right corner indicates the precision
that can be expected for the ILC at
p
s = 500 GeV with L = 500 fb 1
of integrated
luminosity shared equally between the beam polarisations Pe , Pe+ = Ā±0.8, āŒ„0.3 [80].
3.3 Electroweak Precision Measurements at the ILC
+ ĀÆ
Is this useful/trivial?
@ f l i p . t a n e d o AWLC 2020 22
Another note about spin-1
ā€œHeavy dark photonsā€
ā€œSearch for a heavy dark photon at
future e+eāˆ’ collidersā€
Is there really a gap in the LHC
search between Z pole and 150
GeV?

He, He, Huang, Li: 1712.09095
13
50 100 150 200 250 300 350
1e-4
5e-4
0 001
0 005
0 010
0 050
0 100
FCC-ee (350 GeV) 1.5/ab
C13 3 / b
1 0 .0 0 5
Cb
C13/1 300/ b
C13/1
3/ab
C
C ( 0 GeV) 5/ab
FCC-ee (1 0 GeV) 10/ab
LHC: Drell-Yan from 1412.0018; fig 8
Ī¼Ī¼Ę” final state
Do lepton colliders fill this gap?
Large Z-mixing when dark photon
mass ~ mZ (hypercharge portal)
@ f l i p . t a n e d o AWLC 2020 22
Long Lived, Low Mass Particles
From Higgs decays. Are there dedicated studies?
Studies inspired by neutral naturalness e.g.
boosted objects from Higgs

Sensitive to m ~ 10 GeV, cĻ„ ~ cm
UCSB: 1812.05588; Cheung & Wang: 1911.08721, Dark sector states from heavy SM, see e.g. 1710.07635
14
10-5 0.001 0.100 10
10-5 0.001 0.100 10
5.Ɨ10-5
1.Ɨ10-4
5.Ɨ10-4
0.001
0.005
0.010
95%
Br(h->XX)
Limit
mX = 7.5 GeV
0.005
0.010
)
Limit
mX = 25 GeV
LARGE MASS

ANALYSIS

(MIN CLUSTER DIST)
CEPC/FCCee
PROPER DECAY LENGTH [M]
LONG

LIFETIME

ANALYSIS
By the way: we are skipping dark sector states from decay of SM states
see, e.g. Zhen Liuā€™s talk for dark sector from Higgs decay (e.g. dark Higgs)
Recast? Dedicated studies for
associated production of long-lived
mediators?
@ f l i p . t a n e d o AWLC 2020 22
Dark Sector Spectroscopy at the ILC
Beyond mono-photon (mono-dilepton)
Andersen, Rauch, Spannowsky 1308.4588 15
0 1 2 3
10 3
10 2
10 1
SM background
8 GeV S
120 GeV X
8 GeV S
5 GeV X
8 GeV V
5 GeV X
8 GeV V
120 GeV X
SPIN
MASS SCALES
& polarization helps!
Example: scalar vs. vector with heavy/light dark matter
@ f l i p . t a n e d o AWLC 2020 22
Dark Sector Spectroscopy at the ILC
Beyond mono-photon
Andersen, Rauch, Spannowsky 1308.4588 16
SPIN
MASS SCALES
& polarization helps!
powers depend on spin of
t-channel exchange particle
Trick: multi-Regge kinematics
Are there generalizations of this approach?ā€Ø
Systematic study for a scan of models?ā€Ø
What about parity? (Aā€™ vs Zā€™, ALP vs. hD)
t1
t2
t3
@ f l i p . t a n e d o AWLC 2020 22
e+
e
Z
, Z
a
Figure 1: Tree-level Feynm
radiated oā†µ an initial-state elec
hence neglected here. ALPs can
in association with a , a Z or
association with a , a Z or a H
d (e+
e ! a)
dāŒ¦
= 2ā‡”ā†µā†µ2
d (e+
e ! Za)
dāŒ¦
= 2ā‡”ā†µā†µ2
e+
e
Z
, Z
a e
e+ , Z
a
e+
e
Z
h
a
Figure 1: Tree-level Feynman diagrams for the processes e+e ! Xa with X = , Z, h.
e+
e
Z
, Z
a e
e+ , Z
a
Figure 1: Tree-level Feynman diagrams for the processes e
radiated oā†µ an initial-state electron are suppressed by m2
e/s r
hence neglected here. ALPs can be radiated of a photon or a Z
in association with a , a Z or a Higgs. The diā†µerential cros
association with a , a Z or a Higgs boson are given by
āœ“ ā—†
Axion Like Particles
ALPs at future colliders: 1808.10323
17
-
- - - - -
-
-
-
F
F
Figure 4: Left: Summary plot of constraints on the parameter space spanned by the ALP mass
and ALP-photon coupling. Right: Enlarged display of the constraints from collider searches: LEP
(light blue and blue), CDF (purple), LHC from associated production and Z decays (orange), LHC
associated production
photon fusion @ LHC
Photon fusion atā€Ø
lepton collider?
@ f l i p . t a n e d o AWLC 2020 22
Axion Like Particles at CLIC/FCC
ALPs at future colliders: 1808.10323
18
- - - - -
-
-
- - - - -
-
-
CLIC380
CLIC1500
CLIC3000
FCC-ee
e+
e ! a e+
e ! Za
Figure 6: Projected sensitivity regions for searches for e+e ! a ! 3 (left) and e+e ! Za !
Zvis (right) at future e+e colliders for Br(a ! ) = 1. The constraints from Figure 4 are shown
@ f l i p . t a n e d o AWLC 2020 22
ā€¦ similar reach to LHC (Drell Yan, Z decay)
ALPs at future colliders: 1808.10323
19
- - - - -
-
-
-
1 10 100
10 3
10 2
LHC
LHC27
FCC-hh
Z ! a
@ f l i p . t a n e d o AWLC 2020 22
Dark-onia / Displaced Lepton Jets
Targeting dark matter self-interactions
1 5 10 50 100
10
50
100
500
1000
m [GeV]
m
z
d
[MeV]
N
o
b
o
u
n
d
s
t
a
t
e
1-3 cm2
/g
3-10 cm2
/g
= 0.2
m
Z
d
>
0
.
6
m
Figure 2. Left: Dark photon masses and kinetic mixing parameters that we use for the collider study (red
dots). We also show the existing bounds from the BaBar [59], LHCb [60] and beam dump experiments (gray
shaded), see, e.g., [61ā€“63]. Future measurements from the LHCb [64] (blue dashed) and the proposed FASER
WIMPonium: 0901.2125, SIDM bound states: 1811.05999
20
A
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Bps
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ĀÆ
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Displaced Lepton
Jets (DLJs)
`+
`
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p
A
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ĀÆ
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Bps
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Zd
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Displaced Lepton
Jets (DLJs)
`+
`
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`+
`
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g
<latexit sha1_base64="jOndNTz7oOjPRDD+0pZ/+rey2rI=">AAAB6HicbVBNS8NAEJ3Ur1q/qh69LBbBU0lU0GPRi8cW7Ae0oWy2k3btZhN2N0IJ/QVePCji1Z/kzX/jts1BWx8MPN6bYWZekAiujet+O4W19Y3NreJ2aWd3b/+gfHjU0nGqGDZZLGLVCahGwSU2DTcCO4lCGgUC28H4bua3n1BpHssHM0nQj+hQ8pAzaqzUGPbLFbfqzkFWiZeTCuSo98tfvUHM0gilYYJq3fXcxPgZVYYzgdNSL9WYUDamQ+xaKmmE2s/mh07JmVUGJIyVLWnIXP09kdFI60kU2M6ImpFe9mbif143NeGNn3GZpAYlWywKU0FMTGZfkwFXyIyYWEKZ4vZWwkZUUWZsNiUbgrf88ippXVS9y6rbuKrUbvM4inACp3AOHlxDDe6hDk1ggPAMr/DmPDovzrvzsWgtOPnMMfyB8/kDzR+M7Q==</latexit>
g
<latexit sha1_base64="jOndNTz7oOjPRDD+0pZ/+rey2rI=">AAAB6HicbVBNS8NAEJ3Ur1q/qh69LBbBU0lU0GPRi8cW7Ae0oWy2k3btZhN2N0IJ/QVePCji1Z/kzX/jts1BWx8MPN6bYWZekAiujet+O4W19Y3NreJ2aWd3b/+gfHjU0nGqGDZZLGLVCahGwSU2DTcCO4lCGgUC28H4bua3n1BpHssHM0nQj+hQ8pAzaqzUGPbLFbfqzkFWiZeTCuSo98tfvUHM0gilYYJq3fXcxPgZVYYzgdNSL9WYUDamQ+xaKmmE2s/mh07JmVUGJIyVLWnIXP09kdFI60kU2M6ImpFe9mbif143NeGNn3GZpAYlWywKU0FMTGZfkwFXyIyYWEKZ4vZWwkZUUWZsNiUbgrf88ippXVS9y6rbuKrUbvM4inACp3AOHlxDDe6hDk1ggPAMr/DmPDovzrvzsWgtOPnMMfyB8/kDzR+M7Q==</latexit>
ed lepton jet signatures from the SIDM bound state at the LHC. In the model we consider, a
r (A) couples the SIDM particle ( ) to gluons (g), a dark photon (Zd) mediates dark matter
nd leads to formation of the bound state (Bps). The boosted Zd decays to SM charged leptons
g portal.
k matter self-interactions in the halos. The resulting bound state can annihilate into
iators, which subsequently decay back to the SM particles, as illustrated in Fig. 1. If
SMALL SCALE STRUCTURE TARGETS
How would this look at a lepton collider?ā€Ø
Clean machine: tracking and vertexing?
@ f l i p . t a n e d o AWLC 2020 22
More Exotic Cases: are linear colliders helpful?
Soft bombs, e.g. from hidden valleys
Portal to hidden valley-type model with large ā€™t Hooft couplingā€Ø
Spherically symmetric spray of soft particles.

Is Knapen et al. study amenable to a linear collider?
Fichet (et al): 1705.10331, 1710.00850, 1910.02972
Perelstein and San: 2009.09867 (muonic puzzles),
21
Quantum forces
Knapen et al. 1612.00850; FT et al. 2002.12335
Non-renormalizable interaction with a pair of
light mediators.
@ f l i p . t a n e d o AWLC 2020 22
22
Ask not what a linear collider can do
for your favorite dark sectors,
Ask what you can do for dark sectors
with a linear collider.
https://www.symmetrymagazine.org/article/october-2005/snowmass-2005
(+16)
@ f l i p . t a n e d o AWLC 2020 22
References to get started
Perhaps useful for those arriving from the dark sector
ā€¢ ILC TDR, Vol 2: Physics: 1306.6352

ā€¢ ILC Study Questions for Snowmass: 2007.03650

ā€¢ CLIC Potential for New Physics: 1812.02093
SLAC Dark Forces ā€™09: https://indico.cern.ch/event/67760/timetable/ ; see S. Thomas
23
ā€¢ Dark Sectors 2016 Community Report: 1608.08632

ā€¢ US Cosmic Visions: New Ideas in Dark Matter 2017 Report: 1707.04591

Dark sectors 101 for energy frontier folk

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electron positron production of dark sector particles

  • 1. @ f l i p . t a n e d o AWLC 2020 electronā€“positron production of dark sector particles Flip Tanedo October 20, 2020 at a future linear collider Americas Workshop On Linear Colliders 2020
  • 2. @ f l i p . t a n e d o AWLC 2020 22 2 Ask not what a linear collider can do for your favorite dark sectorsā€¦ ā€¢ Clean machine: ~10x the tracking of the LHC, excellent vertexing ā€¢ No multiple collisions/pileup; no need to trigger ā€¢ Control of initial state polarization ILC TDR v2: 1306.6352
  • 3. @ f l i p . t a n e d o AWLC 2020 22 3 Ask not what a linear collider can do for your favorite dark sectors, Ask what you can do for dark sectors with a linear collider. What studies can be done now to help us maximize a linear collider as a ā€œlamp postā€ for searching for dark sectors.
  • 4. @ f l i p . t a n e d o AWLC 2020 22 Dark Sectors at a Linear Collider Adapting James Carville (1992) 1. Change vs. more of the same 2. Itā€™s the economy, stupid 3. Donā€™t forget healthcare https://en.wikipedia.org/wiki/It's_the_economy,_stupid 4 what you would cover from a WIMP search mediator beam polarization (new possibilities)
  • 5. @ f l i p . t a n e d o AWLC 2020 22 Dark Sector ā€œItā€™s the mediator, stupidā€ (paraphrasing J. Carville) Mediator massā€Ø Mediator spinā€Ø Coupling to visible matter (strength and portal)ā€Ø Coupling to dark matter 5 Visible Matter Mediator Dark Matter W H AT W E W A N T : ( F O R E A C H M E D I AT O R ) S M I N E R T S TAT E e.g. for thermal freeze out large range; ballpark: below DM mass, above ~10 MeV (e.g. BBN) e.g. to avoid overclosure e.g. could benchmark to 100 MeV mediator, 100 GeV dark matter linear collider?
  • 6. @ f l i p . t a n e d o AWLC 2020 22 Some favorite portals (Near-)Renormalizable Other options: sterile neutrinoā€Ø & other ā€œt-channelā€ mediators 6 spin-1 spin-0 CP Even CP Mixed CP Even CP Odd kinetic mixing kinetic mixing + mass mixing Higgs portal e.g. anomaly e.g. dark photon e.g. dark Higgs e.g. axion-like particle e.g. dark Z S-CHANNEL T-CHANNEL see e.g. 2005.01515 (rev) see e.g. 1203.2947 see e.g. 1512.04119 see e.g. 1808.10323 Do we have a systematic study of these cases for a linear collider?
  • 7. @ f l i p . t a n e d o AWLC 2020 22 Reminder of 2010 Missing energy/mono-X: EFT vs. Simplified Models EFT/Contact: Maverick DM: 1002.4137, UCI: 1005.1286, 1008.1783; FNAL: 1005.3797, 1103.0240 7 Simplified Models: Busoni et al: 1307.2253, 1402.1275 (s), 1405.3101 (t); UCI: 1111.2359, An et al: 1202.2894, Frandsen et al: 1204.3839, Buchmuller et al: 1308.6799, 2014 report: 1409.2893, 2015 report: 1506.03116, Albert et al: 1607.06680, De Simone and Jacques review: 1603.08002, Kahlhoefer review: 1702.02430, [many others] TAG MISSING ET TAG MISSING ET MEDIATOR contact int. / ā€œEFTā€ / ā€œWIMPā€ simplified model / ā€œUV modelā€
  • 8. @ f l i p . t a n e d o AWLC 2020 22 Low-Hanging Fruit Bump hunting? e.g. Leptophilic mediators (gauged LĪ¼ - Le) ā€Ø How well can we do with displaced vertices? Contact interactions: see, e.g. hep-ph/0111017, 1211.2254, 1211.4008, 2001.03011 8 TAG MISSING ET MEDIATOR AND PT MEDIATOR VISIBLE VISIBLE RADIATIVE RETURN See Jenny Listā€™s talkā€Ø & e.g. 2001.03011 What limits mediator mass determination for low masses? Can we measure partial widths?
  • 9. @ f l i p . t a n e d o AWLC 2020 22 Low-Hanging Fruit Dark Sectors at Lepton Colliders ILC TDR Vol. 2: 1306.6352 9 FOR PT MEDIATOR VISIBLE VISIBLE What limits mediator mass determination for low masses? Can we measure partial widths? UV Motivated (e.g. GUT). What happens forā€Ø lower masses and smaller couplings? e.g. Leptophilic mediators (gauged LĪ¼ - Le) ā€Ø How well can we do with displaced vertices?
  • 10. @ f l i p . t a n e d o AWLC 2020 22 Reminder: Chirality & Mediator Spin L and R refer to ā€œam I an electroweak doublet or singlet?" Each term corresponds to one of the four beam polarization configurations.ā€Ø Assuming: negligible electron mass limit, 100% polarization 10 spin-1 spin-0 does not mix EW doublet/singlet mixes EW doublet/singlet POSITRONS ELECTRONS ā€œSPIN-1 COUPLINGā€ "PARITYā€
  • 11. @ f l i p . t a n e d o AWLC 2020 22 Polarization For argumentā€™s sake, assume chiral limit and 100% polarized beams Homework: do the realistic case; may be a good Snowmass white paper In addition to kinematics (cos Īø dependence), one could turn on/oļ¬€ the resonance by changing the polarization of the beam. Measure the chiral couplings (dark photon vs. dark Z)? Polarization in contact interaction approach: hep-ph/0111017, 1211.4008; Polarization for ILC physics: 1801.02840 11 SAME CHIRALITY OPPOSITE CHIRALITY SPIN-1 SPIN-0
  • 12. @ f l i p . t a n e d o AWLC 2020 22 Do this for spin-1 mediators? Map dark Z to chiral couplings A generic spin-1 portal has kinetic mixing and mass mixing. The ratio of the two determines the how vector-like or chiral the fermion couplings are. Potential of the ILC to Discover New Particles: 1702.05333 12 ... - gZ R/gZ R -330% -20% -10% 10% 20% 6 gZ L /gZ L -20% -10% 10% 20% v SM uLight top partners [35] u Light top partners Alternative 1 [75] u Light top partners Alternative 2 [75] uLittle Higgs [76] uRS with Custodial SU(2) [28] uComposite Top [77] u 5D Emergent [78] u 4D Composite Higgs Models [79] u RS with Z-Zā€™ Mixing [27] ILC Precision Figure 4: Predictions of several Randall-Sundrum (RS) models and/or compositeness or Little Higgs models on the deviations of the left- and right-handed couplings of the t quark to the Z0 boson. The ellipse in the frame in the upper right corner indicates the precision that can be expected for the ILC at p s = 500 GeV with L = 500 fb 1 of integrated luminosity shared equally between the beam polarisations Pe , Pe+ = Ā±0.8, āŒ„0.3 [80]. 3.3 Electroweak Precision Measurements at the ILC + ĀÆ Is this useful/trivial?
  • 13. @ f l i p . t a n e d o AWLC 2020 22 Another note about spin-1 ā€œHeavy dark photonsā€ ā€œSearch for a heavy dark photon at future e+eāˆ’ collidersā€ Is there really a gap in the LHC search between Z pole and 150 GeV? He, He, Huang, Li: 1712.09095 13 50 100 150 200 250 300 350 1e-4 5e-4 0 001 0 005 0 010 0 050 0 100 FCC-ee (350 GeV) 1.5/ab C13 3 / b 1 0 .0 0 5 Cb C13/1 300/ b C13/1 3/ab C C ( 0 GeV) 5/ab FCC-ee (1 0 GeV) 10/ab LHC: Drell-Yan from 1412.0018; fig 8 Ī¼Ī¼Ę” final state Do lepton colliders fill this gap? Large Z-mixing when dark photon mass ~ mZ (hypercharge portal)
  • 14. @ f l i p . t a n e d o AWLC 2020 22 Long Lived, Low Mass Particles From Higgs decays. Are there dedicated studies? Studies inspired by neutral naturalness e.g. boosted objects from Higgs Sensitive to m ~ 10 GeV, cĻ„ ~ cm UCSB: 1812.05588; Cheung & Wang: 1911.08721, Dark sector states from heavy SM, see e.g. 1710.07635 14 10-5 0.001 0.100 10 10-5 0.001 0.100 10 5.Ɨ10-5 1.Ɨ10-4 5.Ɨ10-4 0.001 0.005 0.010 95% Br(h->XX) Limit mX = 7.5 GeV 0.005 0.010 ) Limit mX = 25 GeV LARGE MASS ANALYSIS (MIN CLUSTER DIST) CEPC/FCCee PROPER DECAY LENGTH [M] LONG LIFETIME ANALYSIS By the way: we are skipping dark sector states from decay of SM states see, e.g. Zhen Liuā€™s talk for dark sector from Higgs decay (e.g. dark Higgs) Recast? Dedicated studies for associated production of long-lived mediators?
  • 15. @ f l i p . t a n e d o AWLC 2020 22 Dark Sector Spectroscopy at the ILC Beyond mono-photon (mono-dilepton) Andersen, Rauch, Spannowsky 1308.4588 15 0 1 2 3 10 3 10 2 10 1 SM background 8 GeV S 120 GeV X 8 GeV S 5 GeV X 8 GeV V 5 GeV X 8 GeV V 120 GeV X SPIN MASS SCALES & polarization helps! Example: scalar vs. vector with heavy/light dark matter
  • 16. @ f l i p . t a n e d o AWLC 2020 22 Dark Sector Spectroscopy at the ILC Beyond mono-photon Andersen, Rauch, Spannowsky 1308.4588 16 SPIN MASS SCALES & polarization helps! powers depend on spin of t-channel exchange particle Trick: multi-Regge kinematics Are there generalizations of this approach?ā€Ø Systematic study for a scan of models?ā€Ø What about parity? (Aā€™ vs Zā€™, ALP vs. hD) t1 t2 t3
  • 17. @ f l i p . t a n e d o AWLC 2020 22 e+ e Z , Z a Figure 1: Tree-level Feynm radiated oā†µ an initial-state elec hence neglected here. ALPs can in association with a , a Z or association with a , a Z or a H d (e+ e ! a) dāŒ¦ = 2ā‡”ā†µā†µ2 d (e+ e ! Za) dāŒ¦ = 2ā‡”ā†µā†µ2 e+ e Z , Z a e e+ , Z a e+ e Z h a Figure 1: Tree-level Feynman diagrams for the processes e+e ! Xa with X = , Z, h. e+ e Z , Z a e e+ , Z a Figure 1: Tree-level Feynman diagrams for the processes e radiated oā†µ an initial-state electron are suppressed by m2 e/s r hence neglected here. ALPs can be radiated of a photon or a Z in association with a , a Z or a Higgs. The diā†µerential cros association with a , a Z or a Higgs boson are given by āœ“ ā—† Axion Like Particles ALPs at future colliders: 1808.10323 17 - - - - - - - - - F F Figure 4: Left: Summary plot of constraints on the parameter space spanned by the ALP mass and ALP-photon coupling. Right: Enlarged display of the constraints from collider searches: LEP (light blue and blue), CDF (purple), LHC from associated production and Z decays (orange), LHC associated production photon fusion @ LHC Photon fusion atā€Ø lepton collider?
  • 18. @ f l i p . t a n e d o AWLC 2020 22 Axion Like Particles at CLIC/FCC ALPs at future colliders: 1808.10323 18 - - - - - - - - - - - - - - CLIC380 CLIC1500 CLIC3000 FCC-ee e+ e ! a e+ e ! Za Figure 6: Projected sensitivity regions for searches for e+e ! a ! 3 (left) and e+e ! Za ! Zvis (right) at future e+e colliders for Br(a ! ) = 1. The constraints from Figure 4 are shown
  • 19. @ f l i p . t a n e d o AWLC 2020 22 ā€¦ similar reach to LHC (Drell Yan, Z decay) ALPs at future colliders: 1808.10323 19 - - - - - - - - 1 10 100 10 3 10 2 LHC LHC27 FCC-hh Z ! a
  • 20. @ f l i p . t a n e d o AWLC 2020 22 Dark-onia / Displaced Lepton Jets Targeting dark matter self-interactions 1 5 10 50 100 10 50 100 500 1000 m [GeV] m z d [MeV] N o b o u n d s t a t e 1-3 cm2 /g 3-10 cm2 /g = 0.2 m Z d > 0 . 6 m Figure 2. Left: Dark photon masses and kinetic mixing parameters that we use for the collider study (red dots). We also show the existing bounds from the BaBar [59], LHCb [60] and beam dump experiments (gray shaded), see, e.g., [61ā€“63]. Future measurements from the LHCb [64] (blue dashed) and the proposed FASER WIMPonium: 0901.2125, SIDM bound states: 1811.05999 20 A <latexit sha1_base64="Ww7JLfQe/vF3yo2MjtBsUU0nplo=">AAAB6nicbVBNS8NAEJ34WetX1aOXxSKIh5KIoMeqF48V7Qe0sWy2k3bpZhN2N0IJ/QlePCji1V/kzX/jts1BWx8MPN6bYWZekAiujet+O0vLK6tr64WN4ubW9s5uaW+/oeNUMayzWMSqFVCNgkusG24EthKFNAoENoPhzcRvPqHSPJYPZpSgH9G+5CFn1Fjp/urxtFsquxV3CrJIvJyUIUetW/rq9GKWRigNE1Trtucmxs+oMpwJHBc7qcaEsiHtY9tSSSPUfjY9dUyOrdIjYaxsSUOm6u+JjEZaj6LAdkbUDPS8NxH/89qpCS/9jMskNSjZbFGYCmJiMvmb9LhCZsTIEsoUt7cSNqCKMmPTKdoQvPmXF0njrOK5Fe/uvFy9zuMowCEcwQl4cAFVuIUa1IFBH57hFd4c4bw4787HrHXJyWcO4A+czx+rto1h</latexit> <latexit 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sha1_base64="jOndNTz7oOjPRDD+0pZ/+rey2rI=">AAAB6HicbVBNS8NAEJ3Ur1q/qh69LBbBU0lU0GPRi8cW7Ae0oWy2k3btZhN2N0IJ/QVePCji1Z/kzX/jts1BWx8MPN6bYWZekAiujet+O4W19Y3NreJ2aWd3b/+gfHjU0nGqGDZZLGLVCahGwSU2DTcCO4lCGgUC28H4bua3n1BpHssHM0nQj+hQ8pAzaqzUGPbLFbfqzkFWiZeTCuSo98tfvUHM0gilYYJq3fXcxPgZVYYzgdNSL9WYUDamQ+xaKmmE2s/mh07JmVUGJIyVLWnIXP09kdFI60kU2M6ImpFe9mbif143NeGNn3GZpAYlWywKU0FMTGZfkwFXyIyYWEKZ4vZWwkZUUWZsNiUbgrf88ippXVS9y6rbuKrUbvM4inACp3AOHlxDDe6hDk1ggPAMr/DmPDovzrvzsWgtOPnMMfyB8/kDzR+M7Q==</latexit> ed lepton jet signatures from the SIDM bound state at the LHC. In the model we consider, a r (A) couples the SIDM particle ( ) to gluons (g), a dark photon (Zd) mediates dark matter nd leads to formation of the bound state (Bps). The boosted Zd decays to SM charged leptons g portal. k matter self-interactions in the halos. The resulting bound state can annihilate into iators, which subsequently decay back to the SM particles, as illustrated in Fig. 1. If SMALL SCALE STRUCTURE TARGETS How would this look at a lepton collider?ā€Ø Clean machine: tracking and vertexing?
  • 21. @ f l i p . t a n e d o AWLC 2020 22 More Exotic Cases: are linear colliders helpful? Soft bombs, e.g. from hidden valleys Portal to hidden valley-type model with large ā€™t Hooft couplingā€Ø Spherically symmetric spray of soft particles. Is Knapen et al. study amenable to a linear collider? Fichet (et al): 1705.10331, 1710.00850, 1910.02972 Perelstein and San: 2009.09867 (muonic puzzles), 21 Quantum forces Knapen et al. 1612.00850; FT et al. 2002.12335 Non-renormalizable interaction with a pair of light mediators.
  • 22. @ f l i p . t a n e d o AWLC 2020 22 22 Ask not what a linear collider can do for your favorite dark sectors, Ask what you can do for dark sectors with a linear collider. https://www.symmetrymagazine.org/article/october-2005/snowmass-2005 (+16)
  • 23. @ f l i p . t a n e d o AWLC 2020 22 References to get started Perhaps useful for those arriving from the dark sector ā€¢ ILC TDR, Vol 2: Physics: 1306.6352 ā€¢ ILC Study Questions for Snowmass: 2007.03650 ā€¢ CLIC Potential for New Physics: 1812.02093 SLAC Dark Forces ā€™09: https://indico.cern.ch/event/67760/timetable/ ; see S. Thomas 23 ā€¢ Dark Sectors 2016 Community Report: 1608.08632 ā€¢ US Cosmic Visions: New Ideas in Dark Matter 2017 Report: 1707.04591 Dark sectors 101 for energy frontier folk