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Ground state cooling via Sideband cooling Fabian Flassig TUM June 26 th , 2013
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Ground state cooling via Sideband cooling · 2014-10-08 · • Apply Raman beams for 5ms for all three sideband frequencies (corresponding to dimensions of trap) • Apply repump

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Page 1: Ground state cooling via Sideband cooling · 2014-10-08 · • Apply Raman beams for 5ms for all three sideband frequencies (corresponding to dimensions of trap) • Apply repump

Ground state coolingvia

Sideband cooling

Fabian FlassigTUM

June 26th, 2013

Page 2: Ground state cooling via Sideband cooling · 2014-10-08 · • Apply Raman beams for 5ms for all three sideband frequencies (corresponding to dimensions of trap) • Apply repump

Motivation

• Gain ultimate control over all relevant degreesof freedom

• Necessary for constant atomic transitionfrequencies

• Do many fancy experiments!!!

Entangled states of trapped atomic ions, R. Blatt, D. Wineland, Nature 453 (2008)State manipulation of single atoms in an optical cavity, M. Uphoff

Page 3: Ground state cooling via Sideband cooling · 2014-10-08 · • Apply Raman beams for 5ms for all three sideband frequencies (corresponding to dimensions of trap) • Apply repump

Context

• Sideband cooling• Raman sideband cooling• Temperature• Lamb-Dicke regime• Ion vs. Atom trapping• Cooling of single 87Rb atom to ground state• Outlook

Page 4: Ground state cooling via Sideband cooling · 2014-10-08 · • Apply Raman beams for 5ms for all three sideband frequencies (corresponding to dimensions of trap) • Apply repump

Sideband cooling

Page 5: Ground state cooling via Sideband cooling · 2014-10-08 · • Apply Raman beams for 5ms for all three sideband frequencies (corresponding to dimensions of trap) • Apply repump

Free atom in space

Page 6: Ground state cooling via Sideband cooling · 2014-10-08 · • Apply Raman beams for 5ms for all three sideband frequencies (corresponding to dimensions of trap) • Apply repump

Captured in a trap

Page 7: Ground state cooling via Sideband cooling · 2014-10-08 · • Apply Raman beams for 5ms for all three sideband frequencies (corresponding to dimensions of trap) • Apply repump

Cooling the atom

Page 8: Ground state cooling via Sideband cooling · 2014-10-08 · • Apply Raman beams for 5ms for all three sideband frequencies (corresponding to dimensions of trap) • Apply repump

Quantized states of motion

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Page 9: Ground state cooling via Sideband cooling · 2014-10-08 · • Apply Raman beams for 5ms for all three sideband frequencies (corresponding to dimensions of trap) • Apply repump

For every excitation level

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Page 10: Ground state cooling via Sideband cooling · 2014-10-08 · • Apply Raman beams for 5ms for all three sideband frequencies (corresponding to dimensions of trap) • Apply repump

Resonant optical excitation

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Page 11: Ground state cooling via Sideband cooling · 2014-10-08 · • Apply Raman beams for 5ms for all three sideband frequencies (corresponding to dimensions of trap) • Apply repump

Detuned optical excitation

Resolved-sideband cooling of a micromechanical oscillator, A. Schliesser et al., Nature Physics 4, 415 - 419 (2008)

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| ⟩ Resonance freqency

Page 12: Ground state cooling via Sideband cooling · 2014-10-08 · • Apply Raman beams for 5ms for all three sideband frequencies (corresponding to dimensions of trap) • Apply repump

Red shifted optical excitation

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Page 13: Ground state cooling via Sideband cooling · 2014-10-08 · • Apply Raman beams for 5ms for all three sideband frequencies (corresponding to dimensions of trap) • Apply repump

Rabi oscillations

Quantum computing with trapped ions, H. Häffner et al., Physics Reports 469, 4 (2008)

• Oscillation between ground and excited state• Without pumping no cooling effect

Page 14: Ground state cooling via Sideband cooling · 2014-10-08 · • Apply Raman beams for 5ms for all three sideband frequencies (corresponding to dimensions of trap) • Apply repump

Pump to fast-decaying higher level

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Page 15: Ground state cooling via Sideband cooling · 2014-10-08 · • Apply Raman beams for 5ms for all three sideband frequencies (corresponding to dimensions of trap) • Apply repump

In sum

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Page 16: Ground state cooling via Sideband cooling · 2014-10-08 · • Apply Raman beams for 5ms for all three sideband frequencies (corresponding to dimensions of trap) • Apply repump

Raman sideband cooling

Page 17: Ground state cooling via Sideband cooling · 2014-10-08 · • Apply Raman beams for 5ms for all three sideband frequencies (corresponding to dimensions of trap) • Apply repump

Raman process

• Transition between two states via virtualexcited state using two laser beams

http://en.wikipedia.org/wiki/Raman_cooling

Page 18: Ground state cooling via Sideband cooling · 2014-10-08 · • Apply Raman beams for 5ms for all three sideband frequencies (corresponding to dimensions of trap) • Apply repump

Why use Raman process?

• Raman allows sub-natural line widthresolution of sidebands (due to long-lastingground states)=> Allows addressing sidebands individually

Resolved-sideband cooling of a micromechanical oscillator, A. Schliesser et al., Nature Physics 4, 415 - 419 (2008)

Page 19: Ground state cooling via Sideband cooling · 2014-10-08 · • Apply Raman beams for 5ms for all three sideband frequencies (corresponding to dimensions of trap) • Apply repump

Raman sideband cooling

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Page 20: Ground state cooling via Sideband cooling · 2014-10-08 · • Apply Raman beams for 5ms for all three sideband frequencies (corresponding to dimensions of trap) • Apply repump

Transfer atom via Raman

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Page 21: Ground state cooling via Sideband cooling · 2014-10-08 · • Apply Raman beams for 5ms for all three sideband frequencies (corresponding to dimensions of trap) • Apply repump

Pump atom back

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Page 22: Ground state cooling via Sideband cooling · 2014-10-08 · • Apply Raman beams for 5ms for all three sideband frequencies (corresponding to dimensions of trap) • Apply repump

Temperature

Page 23: Ground state cooling via Sideband cooling · 2014-10-08 · • Apply Raman beams for 5ms for all three sideband frequencies (corresponding to dimensions of trap) • Apply repump

Heating effects

• Cooling rate limited by Lamb-Dicke factor• Heating caused by:

– Trap laser phase instabilities– Raman lasers causing excitations

• Lowest temperature:heating rate = cooling rate

Page 24: Ground state cooling via Sideband cooling · 2014-10-08 · • Apply Raman beams for 5ms for all three sideband frequencies (corresponding to dimensions of trap) • Apply repump

How to determine temperature?

Quantum dynamics of single trapped ions, Leibfried, D., et al., Reviews of Modern Physics 75.1, 281 (2003)

• -1) is given by:= Γ ( Ω)2( Ω) + Γ• Γ is decay rate of state• is Lamb-Dicke factor• Ω is Rabi frequency• Mean occupation state is:= −

Page 25: Ground state cooling via Sideband cooling · 2014-10-08 · • Apply Raman beams for 5ms for all three sideband frequencies (corresponding to dimensions of trap) • Apply repump

How to determine temperature?

Resolved-sideband cooling of a micromechanical oscillator, A. Schliesser et al., Nature Physics 4, 415 - 419 (2008)

= −• <• Extreme cases:

– = 0→ = 0→ = 0

– = → = ∞→ = ∞

P

Page 26: Ground state cooling via Sideband cooling · 2014-10-08 · • Apply Raman beams for 5ms for all three sideband frequencies (corresponding to dimensions of trap) • Apply repump

Lamb-Dicke regime

Page 27: Ground state cooling via Sideband cooling · 2014-10-08 · • Apply Raman beams for 5ms for all three sideband frequencies (corresponding to dimensions of trap) • Apply repump

Lamb-Dicke regime

• Lamb-Dicke factor gives probability ofphoton recoil energy leading to an increase instate of motion

• = with being recoil frequency

• Confinement of atom to ≤ 15nm to achieve≤ 0.1

Page 28: Ground state cooling via Sideband cooling · 2014-10-08 · • Apply Raman beams for 5ms for all three sideband frequencies (corresponding to dimensions of trap) • Apply repump

Low Lamb-Dicke factor

Page 29: Ground state cooling via Sideband cooling · 2014-10-08 · • Apply Raman beams for 5ms for all three sideband frequencies (corresponding to dimensions of trap) • Apply repump

High Lamb-Dicke factor

Page 30: Ground state cooling via Sideband cooling · 2014-10-08 · • Apply Raman beams for 5ms for all three sideband frequencies (corresponding to dimensions of trap) • Apply repump

Ion vs. Atom trapping

Page 31: Ground state cooling via Sideband cooling · 2014-10-08 · • Apply Raman beams for 5ms for all three sideband frequencies (corresponding to dimensions of trap) • Apply repump

Trap

• For ions: Traps providing a quadratic potential,e.g. Paul trap

• For atoms: dipole traps and MOTs are used

Page 32: Ground state cooling via Sideband cooling · 2014-10-08 · • Apply Raman beams for 5ms for all three sideband frequencies (corresponding to dimensions of trap) • Apply repump

Ion vs. Atom

• Basically no difference for cooling process• To reach Lamb-Dicke regime for atoms high

laser power is necessary• Plus high stability for trap

Page 33: Ground state cooling via Sideband cooling · 2014-10-08 · • Apply Raman beams for 5ms for all three sideband frequencies (corresponding to dimensions of trap) • Apply repump

Cooling of single 87Rb atom toground state

Ground-state cooling of a single atom at the center of an optical cavityAndreas Reiserer, Christian Nölleke, Stephan Ritter, and Gerhard Rempe

Phys. Rev. Lett. 110, 223003 (2013)

Page 34: Ground state cooling via Sideband cooling · 2014-10-08 · • Apply Raman beams for 5ms for all three sideband frequencies (corresponding to dimensions of trap) • Apply repump

Aim of experiment

• Cool a single 87Rb atom to ground state ofmotion– Using a dipole trap and Raman sideband cooling

Page 35: Ground state cooling via Sideband cooling · 2014-10-08 · • Apply Raman beams for 5ms for all three sideband frequencies (corresponding to dimensions of trap) • Apply repump

Preprocedure

• Capture 87Rb atoms in MOT• Transfer them to a dipole trap• Precool via laser cooling• Via imaging select a single atom and bring it to

the center of the trap• Bring atom to F=1 state• Do the actual cooling process

Page 36: Ground state cooling via Sideband cooling · 2014-10-08 · • Apply Raman beams for 5ms for all three sideband frequencies (corresponding to dimensions of trap) • Apply repump

87Rb

Page 37: Ground state cooling via Sideband cooling · 2014-10-08 · • Apply Raman beams for 5ms for all three sideband frequencies (corresponding to dimensions of trap) • Apply repump

87Rb

Page 38: Ground state cooling via Sideband cooling · 2014-10-08 · • Apply Raman beams for 5ms for all three sideband frequencies (corresponding to dimensions of trap) • Apply repump

• Apply Raman beams for 5ms for all threesideband frequencies (corresponding todimensions of trap)

• Apply repump pulse for 10ns every 200ns torepump atom to F=1 state– Needs to be pulsed due to Rabi oscillations

Cooling process

Quantum computing with trapped ions, H. Häffner et al., Physics Reports 469, 4 (2008)

Page 39: Ground state cooling via Sideband cooling · 2014-10-08 · • Apply Raman beams for 5ms for all three sideband frequencies (corresponding to dimensions of trap) • Apply repump

Experiments with atoms

• (89±2)% of atoms in 3D ground state of motion

= −

Page 40: Ground state cooling via Sideband cooling · 2014-10-08 · • Apply Raman beams for 5ms for all three sideband frequencies (corresponding to dimensions of trap) • Apply repump

Outlook

Page 41: Ground state cooling via Sideband cooling · 2014-10-08 · • Apply Raman beams for 5ms for all three sideband frequencies (corresponding to dimensions of trap) • Apply repump

Schrödinger Cat state

Page 42: Ground state cooling via Sideband cooling · 2014-10-08 · • Apply Raman beams for 5ms for all three sideband frequencies (corresponding to dimensions of trap) • Apply repump

Ion lattices and quantum gates

Entangled states of trapped atomic ions, R. Blatt, D. Wineland, Nature 453 (2008)

Page 43: Ground state cooling via Sideband cooling · 2014-10-08 · • Apply Raman beams for 5ms for all three sideband frequencies (corresponding to dimensions of trap) • Apply repump

Some bigger stuff

• For single atoms, successful sideband coolingis relatively new

• Cool whole mechanical parts?

Sideband cooling of micromechanical motion to the quantum ground state, J. D. Teufel et al., Nature 475 (2011)

Page 44: Ground state cooling via Sideband cooling · 2014-10-08 · • Apply Raman beams for 5ms for all three sideband frequencies (corresponding to dimensions of trap) • Apply repump

Thank you

• Especially to M. Uphoff!• And to you for your attention!