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project.org
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@ -86,7 +86,7 @@ CLOCK: [2021-10-07 Thu 13:38]--[2021-10-07 Thu 17:50] => 4:12
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**** DONE TeX interaction energy
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**** DONE TeX interaction energy
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**** DONE Implement interaction energy for multiple baths.
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**** DONE Implement interaction energy for multiple baths.
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- plot it for tal
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- plot it for tal
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**** TODO Test it with the two-qubit model
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**** DONE Test it with the two-qubit model
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**** TODO Initial Slip
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**** TODO Initial Slip
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- [[file:calca/heat_flow/initial_slip_zero_int.xopp][see notes on zero interaction]]
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- [[file:calca/heat_flow/initial_slip_zero_int.xopp][see notes on zero interaction]]
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- for self adj -> apparently tempertature independent
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- for self adj -> apparently tempertature independent
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@ -94,9 +94,10 @@ CLOCK: [2021-10-07 Thu 13:38]--[2021-10-07 Thu 17:50] => 4:12
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proportional to integral of imag part of BCF -> normalizing to one
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proportional to integral of imag part of BCF -> normalizing to one
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is helpful: explains why ω_c has influence on coupling strength (as
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is helpful: explains why ω_c has influence on coupling strength (as
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seen in the new trunc scheme)
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seen in the new trunc scheme)
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***** NEXT Adjust normalization of model
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***** DONE Adjust normalization of model
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***** TODO Verify that this works
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***** DONE Verify that this works
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**** TODO Q-Trid -> how non-thermal?
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***** TODO Verify time dependent
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**** HOLD Q-Trid -> how non-thermal?
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**** DONE Influence ω_c on initial slip and shape
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**** DONE Influence ω_c on initial slip and shape
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- see [[file:calca/heat_flow/initial_slip_zero_int.xopp][the notes]]
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- see [[file:calca/heat_flow/initial_slip_zero_int.xopp][the notes]]
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- without non-zero system: generally enhanced flow (why?)
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- without non-zero system: generally enhanced flow (why?)
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@ -123,7 +124,8 @@ CLOCK: [2021-10-07 Thu 13:38]--[2021-10-07 Thu 17:50] => 4:12
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- fit quality
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- fit quality
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- switched to fitting 2/3 where bcf is big and the rest on the tail
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- switched to fitting 2/3 where bcf is big and the rest on the tail
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****** TODO Try less symmetric
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****** TODO Port to new system
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****** TODO Try less symmetric
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*** DONE figure out why means involving the stoch. process are so bad
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*** DONE figure out why means involving the stoch. process are so bad
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- maybe y is wrong -> no
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- maybe y is wrong -> no
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@ -142,11 +144,12 @@ CLOCK: [2021-10-07 Thu 13:38]--[2021-10-07 Thu 17:50] => 4:12
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- Properties
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- Properties
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- Initial time: \(E_{\text {int }}(0):=\operatorname{Tr}\left[\rho_{\mathrm{S}}(0) H_{\mathrm{S}}\right] \quad\left(H_{\mathrm{S}}^{\circledast}(0, \beta)=H_{\mathrm{S}}\right)\)
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- Initial time: \(E_{\text {int }}(0):=\operatorname{Tr}\left[\rho_{\mathrm{S}}(0) H_{\mathrm{S}}\right] \quad\left(H_{\mathrm{S}}^{\circledast}(0, \beta)=H_{\mathrm{S}}\right)\)
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**** DONE Find Rivas Paper
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**** DONE Find Rivas Paper
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*** TODO Physical Implication Single Bath
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*** HOLD Physical Implication Single Bath
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- how far away from thermal state
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- how far away from thermal state
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- exponential decay for markov case?
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- exponential decay for markov case?
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*** TODO Think about Higher moments
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*** TODO Think about Higher moments
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*** TODO Why does the expression containing the first hier. states converging faster.
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- see [[file:calca/heat_flow/higher_order.xopp][notes]]
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*** HOLD Why does the expression containing the first hier. states converging faster.
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** HOLD Steady State Methods
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** HOLD Steady State Methods
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- [[file:python/energy_flow_proper/05_gaussian_two_baths/longhopsidea.org][cholesky transform]] seems to provide us with the posibility of
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- [[file:python/energy_flow_proper/05_gaussian_two_baths/longhopsidea.org][cholesky transform]] seems to provide us with the posibility of
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generating tree like processes
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generating tree like processes
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@ -165,7 +168,7 @@ CLOCK: [2021-10-07 Thu 13:38]--[2021-10-07 Thu 17:50] => 4:12
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- negative thermal conductance at low coupling strenght between
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- negative thermal conductance at low coupling strenght between
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qubit and mode
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qubit and mode
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- thermal transistor with two qubits and one mode
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- thermal transistor with two qubits and one mode
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*** TODO Two Qubits
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*** HOLD Two Qubits
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**** NEXT Hamiltonian
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**** NEXT Hamiltonian
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- [[file:calca/qubit_model/general_model.xopp][see notes]]
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- [[file:calca/qubit_model/general_model.xopp][see notes]]
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- look at cite:Kato2015Aug
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- look at cite:Kato2015Aug
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@ -223,7 +226,7 @@ CLOCK: [2021-10-07 Thu 13:38]--[2021-10-07 Thu 17:50] => 4:12
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- cite:Aurell2019Apr -> jump processes, one bath
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- cite:Aurell2019Apr -> jump processes, one bath
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- effective description
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- effective description
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- rate/kinetic equations
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- rate/kinetic equations
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*** TODO Three Bath Fridge
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*** HOLD Three Bath Fridge
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here is the paper I had in mind when we talked about the three-bath fridge.
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here is the paper I had in mind when we talked about the three-bath fridge.
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@ -238,9 +241,146 @@ This fridge is working continuously. Maybe for HOPS a stroke-based model could b
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https://link.springer.com/article/10.1140%2Fepjs%2Fs11734-021-00094-0
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https://link.springer.com/article/10.1140%2Fepjs%2Fs11734-021-00094-0
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- cite:Karimi2016Nov -> one HO and two resonators
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- cite:Karimi2016Nov -> one HO and two resonators
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*** TODO Realistic Models
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- cite:Mu2017Dec, cite:Binder2018 -> linear additive coupling can't be used to attain cooling
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*** HOLD Realistic Models
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- ask Kimmo about quantum dots
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- ask Kimmo about quantum dots
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- look at prof. strunzs paper again
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- look at prof. strunzs paper again
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*** TODO Heat Engines
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See cite:Binder2018.
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- our strengths lie in medium/fast non-periodic driving
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- carnot maybe good idea: expansion and coupling at the same time
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- we need at least two baths -> non passive
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- stronger coupling + coherence should decrease
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- interesting effects if H(t) does not commute for different times
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- adiabaticity still present even with stronger coupling?
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- monotonic convergence to steady state is guaranteed cite:Feldmann2004Oct
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- distance measure is the relative entropy: not symmetric
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- shortcut to adiabaticity -> performance boost
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**** TODO Ref 92
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- convergence to limit cycle only for weak?
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- I don't think so
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**** TODO Look at 105
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**** TODO Chapter Two: How applicable to our case?
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**** DONE Single Bath Time Dependence
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- no energy extraction due to passivity
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- WRONG!, indeed you can, but it's likely bounded
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- N - times the same HO definitely is, see [[file:python/energy_flow_proper/ergo_stuff/ergotropy_bath_qubit.org][my ergotropy experiments]] and [[file:calca/qubit_model/passive_states_once_more.xopp][calculations]]
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- small but finite changes let things blow up. i suspect this was a waste of time
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- see also [[file:calca/heat_flow/initial_slip_zero_int.xopp][my notes on pure dephasing]] -> no energy transfer dephasing at all
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- see [[file:python/energy_flow_proper/08_dynamic_one_bath/coupling_modulation.org][modulation experiments]] and cite:Binder2018
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- as far away from dephasing as is possible
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**** TODO Connection to Prior Art
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- find out how much theorems are violated
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- are there STIRUP-like surprises: overlapping and swapping stages
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***** TODO Find results to reproduce
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- strong coupling with HO WM: cite:Wiedmann2021Jun
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- stirling: non-markovian cite:Raja2021Mar
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- strokes separate, no overlap
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- apparently higher eff than quasistat -> but only without thermalization
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- only qubits
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- second order in coupling -> born approx, no bath change cite:Kofman2004Sep
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- carnot-like: cite:Scopa2018Jun uses GKSL-Floquet
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****** (old) spin-1/2 in weak-coupling: cite:Geva1992Feb
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- refers to laser with semigroup model: Curzon-Ahlborn efficiency (in classical limit)
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- speaks of endoreversibility
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- irreverisibility through coupling
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- this work: more easily compared with classical, b.c. no simultaneous heat contact
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- qubit: no classical analog, simple
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- questions: curzon-ahlborn still valid, approaching equilibrium
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limit?, effect of quantum mechanics per-se
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******* Model
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- **many** non interacting spins as working fluid (multiply everything by N)
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- **does this make a difference?**
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- carnot cycle: two isothermal br., two adiabatic
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- modulation has no zero, simpliy magnitude of magnetic field, commutes with \(H\)
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- effecive diagonality
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******* Work, Heat, Temp
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- power and heat naively defined by instantaneous limits
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#+DOWNLOADED: screenshot @ 2022-05-09 15:22:34
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[[file:Tasks/2022-05-09_15-22-34_screenshot.png]]
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#+DOWNLOADED: screenshot @ 2022-05-09 15:22:54
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[[file:Tasks/2022-05-09_15-22-54_screenshot.png]]
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- cite:Binder2018 says this is problematic outside the limit cycle if
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modulation is fast: work vs. internal energy (do we have this problem?)
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- Modulating H does not change population
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- negative Temperatures as artifact of non-positive
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******* Cycles
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- temperature equilibration is performed
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- sudden limit: otto cycle efficiency upper bound for all
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- step cycle converges onto reversible
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- final cycle: detailed balance for the gksl -> time dependent coefficients (but ok if slow-varying)
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otherwise problematic
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- non-equilibrium -> "temperatures of the working fluid not the same as the baths"
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******* Striking Findings
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- different heat transfer law
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- high temperature limit:
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- times for isothermal branches
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- at maximum power: times independent of the isotherm temperatures
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- explicit modulation
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- maximum power at curzon-ahlborn eff, effectiveness 1/2
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- similar to newton but need not be close to eq.
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****** General Notions in cite:Kurizki2021Dec
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- continous
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******* Reciprocating Engines
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- adiabatic limit: wm state diagonal, efficiency 1-ω_c/ω_h
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- coherence generated when hamiltonian (system driving) does not
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commute with itself: extra (external) work
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- making the state non-passive is costing work
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- in sudden limit: cohorence gives work extraciton, *markov*
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- non-passivity for unitary extraction from the work medium
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- all engine types are equivalent (map over one cycle) when action small cite:Uzdin2015Sep
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- equivalence of map, but not state inside cycle
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- thermodynamic heat/power also converge to same
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- continous engines only extrac work from coherences
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******* TODO 18, 22 -> ergotropy
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- tighter bound p. 268 for entropy change
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- 18: nonthermal baths are special and may perform work
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- 22: nonpassivity of piston states -> work
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- maybe later: *implement machine proposed in HOPS*
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***** TODO Find Theorems to break
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- quantum speed limit
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- quantum friction
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- stochastic cycles: efficiency limit cite:Binder2018
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- symmetry of expansion and compression
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- modulating the nature of the coupling may be interesting
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- fast driving + overlap of strokes
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- level of non-adiabaticity
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- how much is spohn violated
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- ergotropy production
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- dependence on cutoff
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- limit-cycle: constant energy and entropy? (probably)
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- fast modulation: more complicated "einschwingen", energy exchange
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with external source not to be neglected
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- sudden limit->finite work? and adiabatic limit.
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(maybe even easier to define with finite memory)
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- reversibility? how to define?
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- *sudden limit*: equivalence of continous and stroke broken with a lot of memory?
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- may need big actions
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- detect signatures from cite:Uzdin2015Sep
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- *continous engines*: coherences are only source of work
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- defines a classical engine
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- cite:Kurizki2021Dec: p. 268 -> heat and entropy inequalities may be
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broken, gives concrete conditions
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***** TODO Model Ideas
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- for starters: qubit
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- two coupled qubits also nice
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- non-scalar time dependence
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- period of high int-strength followed by period of low for thermalization
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- maybe extra dephasing step -> should remove power output
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- notion of instantaneous temperature? cite:Geva1992Feb
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- continous cycle machines: may have quantum advantage cite:Kurizki2021Dec
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- coherence work extraction
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- maybe contrast stroke vs continous?
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**** NEXT Implement Two-Bath Qubit
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** DONE Talk
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** DONE Talk
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*** DONE Plan
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*** DONE Plan
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**** RESOLVED How much introduction
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**** RESOLVED How much introduction
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@ -257,11 +397,12 @@ https://link.springer.com/article/10.1140%2Fepjs%2Fs11734-021-00094-0
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- intesting: anti-herm part is probability decay
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- intesting: anti-herm part is probability decay
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- decay is stronger the higher the depth
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- decay is stronger the higher the depth
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**** DONE TeX it
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**** DONE TeX it
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**** TODO Truncation scheme
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**** HOLD Truncation scheme
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- what does it mean if the norms are small?
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- what does it mean if the norms are small?
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- apparently with coupling it still works
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- apparently with coupling it still works
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- maybe dynamic truncation
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- maybe dynamic truncation
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**** TODO TeX It
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**** DONE TeX It
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*** TODO Hopsflow Power
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** Quantum Thermo
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** Quantum Thermo
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*** How is heat flow measured?
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*** How is heat flow measured?
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- cite:Stevens2021Sep energy change in qubit drive field conditioned on measurement outcome
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- cite:Stevens2021Sep energy change in qubit drive field conditioned on measurement outcome
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@ -301,7 +442,7 @@ https://link.springer.com/article/10.1140%2Fepjs%2Fs11734-021-00094-0
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*** Thermal Operations
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*** Thermal Operations
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** Entropy Dynamics
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** Entropy Dynamics
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** Effective thermal states (forget coherences)
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** Effective thermal states (forget coherences)
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*** ASK what is eigenstate thermalization
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*** DONE what is eigenstate thermalization
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*** Preferred Basis
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*** Preferred Basis
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** Automatic definition of interaction so that interaction energy stays zero
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** Automatic definition of interaction so that interaction energy stays zero
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** cite:Esposito2015Dec exclude definitions because not exact differential
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** cite:Esposito2015Dec exclude definitions because not exact differential
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** What happens to the interaction H in steady state
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** What happens to the interaction H in steady state
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** Why does everything come to a halt except the bath?
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** Why does everything come to a halt except the bath?
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** ASK General Coupling Operators?
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* Questions
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* Questions
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** RESOLVED what is a kinetic equation
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** RESOLVED what is a kinetic equation
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** ASK what is feschbach projection
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** DONE what is feschbach projection
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** DONE Look up Michele Campisi
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** DONE Look up Michele Campisi
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- identify heat source first: then definition :)
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- identify heat source first: then definition :)
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- entropy production positive not quite second law: not thermodynamic entropy
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- entropy production positive not quite second law: not thermodynamic entropy
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