Fetching the paper…
Reading the bibliography…
Many-particle entanglement is a key resource for achieving the fundamental precision limits of a quantum sensor.
S. F. Huelga, C. Macchiavello, T. Pellizzari, A. K. Ekert, M. B. Plenio, and J. I. Cirac, Improvement of frequency standards with quantum entanglement, Phys. Rev. Lett. 79
1997
Earlier work this paper cites.
C. A. Sackett, D. Kielpinski, B. E. King, C. Langer, V. Meyer, C. J. Myatt, M. Rowe, Q. Turchette, W. M. Itano, D. J. Wineland, and C. Monroe, Experimental entanglement of four particles, Nature 404
2000
Earlier work this paper cites.
M. D. Lukin, M. Fleischhauer, R. Cote, L. M. Duan, D. Jaksch, J. I. Cirac, and P. Zoller, Dipole Blockade and Quantum Information Processing in Mesoscopic Atomic Ensembles, Phys. Rev. Lett. 87
2001
Earlier work this paper cites.
D. Leibfried, M. D. Barrett, T. Schaetz, J. Britton, J. Chiaverini, W. M. Itano, J. D. Jost, C. Langer, and D. J. Wineland, Toward Heisenberg-limited spectroscopy with multiparticle entangled states, Science 304
2004
Earlier work this paper cites.
M. Hein, J. Eisert, and H. J. Briegel, Multiparty entanglement in graph states, Phys. Rev. A 69
2004
Earlier work this paper cites.
N. Khaneja, T. Reiss, C. Kehlet, T. Schulte-Herbrüggen, and S. J. Glaser, Optimal control of coupled spin dynamics: design of NMR pulse sequences by gradient ascent algorithms, J. Magn. Reson. 172
2005
Earlier work this paper cites.
A. V. Taichenachev, V. I. Yudin, C. W. Oates, C. W. Hoyt, Z. W. Barber, and L. Hollberg, Magnetic Field-Induced Spectroscopy of Forbidden Optical Transitions with Application to Lattice-Based Optical Atomic Clocks, Phys. Rev. Lett. 96
2006
Earlier work this paper cites.
T. Nagata, R. Okamoto, J. L. O’Brien, K. Sasaki, and S. Takeuchi, Beating the standard quantum limit with four-entangled photons, Science 316
2007
Earlier work this paper cites.
B. Higgins, D. Berry, S. Bartlett, M. Mitchell, H. Wiseman, and G. Pryde, Demonstrating Heisenberg-limited unambiguous phase estimation without adaptive measurements, New J. Phys. 11
2009
Earlier work this paper cites.
D. W. Berry, B. L. Higgins, S. D. Bartlett, M. W. Mitchell, G. J. Pryde, and H. M. Wiseman, How to perform the most accurate possible phase measurements, Phys. Rev. A 80
2009
Earlier work this paper cites.
J. A. Jones, S. D. Karlen, J. Fitzsimons, A. Ardavan, S. C. Benjamin, G. A. D. Briggs, and J. J. Morton, Magnetic field sensing beyond the standard quantum limit using 10-spin noon states, Science 324
2009
Earlier work this paper cites.
E. Urban, T. A. Johnson, T. Henage, L. Isenhower, D. Yavuz, T. Walker, and M. Saffman, Observation of Rydberg blockade between two atoms, Nat. Phys. 5
2009
Earlier work this paper cites.
T. Monz, P. Schindler, J. T. Barreiro, M. Chwalla, D. Nigg, W. A. Coish, M. Harlander, W. Hänsel, M. Hennrich, and R. Blatt, 14-qubit entanglement: Creation and coherence, Phys. Rev. Lett. 106
2011
Earlier work this paper cites.
F. Fröwis and W. Dür, Measures of macroscopicity for quantum spin systems, New J. Phys. 14
2012
Earlier work this paper cites.
Y. Dudin, L. Li, F. Bariani, and A. Kuzmich, Observation of coherent many-body Rabi oscillations, Nat. Phys. 8
2012
Earlier work this paper cites.
R. Löw, H. Weimer, J. Nipper, J. B. Balewski, B. Butscher, H. P. Büchler, and T. Pfau, An experimental and theoretical guide to strongly interacting Rydberg gases, J. Phys. B. 45
2012
Earlier work this paper cites.
2013
Earlier work this paper cites.
J. Borregaard and A. S. Sørensen, Efficient atomic clocks operated with several atomic ensembles, Phys. Rev. Lett. 111
2013
Earlier work this paper cites.
E. M. Kessler, P. Kómár, M. Bishof, L. Jiang, A. S. Sørensen, J. Ye, and M. D. Lukin, Heisenberg-Limited Atom Clocks Based on Entangled Qubits, Phys. Rev. Lett. 112
2014
Earlier work this paper cites.
P. Komar, E. M. Kessler, M. Bishof, L. Jiang, A. S. Sørensen, J. Ye, and M. D. Lukin, A quantum network of clocks, Nat. Phys. 10
2014
Earlier work this paper cites.
R. Schirhagl, K. Chang, M. Loretz, and C. L. Degen, Nitrogen-vacancy centers in diamond: Nanoscale sensors for physics and biology, Annu. Rev. Phys. Chem. 65
2014
Earlier work this paper cites.
B. Bloom, T. Nicholson, J. Williams, S. Campbell, M. Bishof, X. Zhang, W. Zhang, S. Bromley, and J. Ye, An optical lattice clock with accuracy and stability at the 10 -18
2014
Earlier work this paper cites.
G. Tóth and I. Apellaniz, Quantum metrology from a quantum information science perspective, J. Phys. A 47
2014
Earlier work this paper cites.
Y. Colombe, D. H. Slichter, A. C. Wilson, D. Leibfried, and D. J. Wineland, Single-mode optical fiber for high-power, low-loss UV transmission, Opt. Express 22
2014
Earlier work this paper cites.
K. Macieszczak, M. Fraas, and R. Demkowicz-Dobrzański, Bayesian quantum frequency estimation in presence of collective dephasing, New J. Phys. 16
2014
Earlier work this paper cites.
A. D. Ludlow, M. M. Boyd, J. Ye, E. Peik, and P. O. Schmidt, Optical atomic clocks, Rev. Mod. Phys. 87
2015
Earlier work this paper cites.
I. Ushijima, M. Takamoto, M. Das, T. Ohkubo, and H. Katori, Cryogenic optical lattice clocks, Nat. Photonics 9
2015
Earlier work this paper cites.
J. Zeiher, P. Schauß, S. Hild, T. Macrì, I. Bloch, and C. Gross, Microscopic Characterization of Scalable Coherent Rydberg Superatoms, Phys. Rev. X 5
2015
Cited alongside, same era.
A. Derevianko, P. Kómár, T. Topcu, R. M. Kroeze, and M. D. Lukin, Effects of molecular resonances on Rydberg blockade, Phys. Rev. A 92
2015
Cited alongside, same era.
R. Demkowicz-Dobrzański, M. Jarzyna, and J. Kołodyński, Quantum Limits in Optical Interferometry (Elsevier, 2015) pp. 345–435
2015
Cited alongside, same era.
M. Jarzyna and R. Demkowicz-Dobrzański, True precision limits in quantum metrology, New J. Phys. 17
2015
Cited alongside, same era.
A. Facon, E.-K. Dietsche, D. Grosso, S. Haroche, J.-M. Raimond, M. Brune, and S. Gleyzes, A sensitive electrometer based on a Rydberg atom in a Schrödinger-cat state, Nature 535
2016
Cited alongside, same era.
R. Kaubruegger, D. V. Vasilyev, M. Schulte, K. Hammerer, and P. Zoller, Quantum Variational Optimization of Ramsey Interferometry and Atomic Clocks, Phys. Rev. X 11
2021
Later among the works it cites.
S. Colombo, E. Pedrozo-Peñafiel, and V. Vuletić, Entanglement-enhanced optical atomic clocks, Appl. Phys. Lett. 121
2022
Later among the works it cites.
D. Bluvstein, H. Levine, G. Semeghini, T. T. Wang, S. Ebadi, M. Kalinowski, A. Keesling, N. Maskara, H. Pichler, M. Greiner, V. Vuletić, and M. D. Lukin, A quantum processor based on coherent transport of entangled atom arrays, Nature 604
2022
Later among the works it cites.
T. M. Graham, Y. Song, J. Scott, C. Poole, L. Phuttitarn, K. Jooya, P. Eichler, X. Jiang, A. Marra, B. Grinkemeyer, et al. , Multi-qubit entanglement and algorithms on a neutral-atom quantum computer, Nature 604
2022
Later among the works it cites.
alphaXiv searches the wider corpus for related work and actual follow-ups.
alphaXiv is searching for related work…
C. L. Degen, F. Reinhard, and P. Cappellaro, Quantum sensing, Rev. Mod. Phys. 89
2017
Cited alongside, same era.
I. D. Leroux, N. Scharnhorst, S. Hannig, J. Kramer, L. Pelzer, M. Stepanova, and P. O. Schmidt, On-line estimation of local oscillator noise and optimisation of servo parameters in atomic clocks, Metrologia 54
2017
Cited alongside, same era.
D. G. Matei, T. Legero, S. Häfner, C. Grebing, R. Weyrich, W. Zhang, L. Sonderhouse, J. M. Robinson, J. Ye, F. Riehle, and U. Sterr, 1.5 μ m 1.5\text{ }\mu\mathrm{m} Lasers with Sub-10 mHz Linewidth, Phys. Rev. Lett. 118
2017
Cited alongside, same era.
H. Bernien, S. Schwartz, A. Keesling, H. Levine, A. Omran, H. Pichler, S. Choi, A. S. Zibrov, M. Endres, M. Greiner, et al. , Probing many-body dynamics on a 51-atom quantum simulator, Nature 551
2017
Cited alongside, same era.
L. Pezzè, A. Smerzi, M. K. Oberthaler, R. Schmied, and P. Treutlein, Quantum metrology with nonclassical states of atomic ensembles, Rev. Mod. Phys. 90
2018
Cited alongside, same era.
W. F. McGrew, X. Zhang, R. J. Fasano, S. A. Schäffer, K. Beloy, D. Nicolodi, R. C. Brown, N. Hinkley, G. Milani, M. Schioppo, T. H. Yoon, and A. D. Ludlow, Atomic clock performance enabling geodesy below the centimetre level, Nature 564
2018
Cited alongside, same era.
S. Dörscher, R. Schwarz, A. Al-Masoudi, S. Falke, U. Sterr, and C. Lisdat, Lattice-induced photon scattering in an optical lattice clock, Phys. Rev. A 97
2018
Cited alongside, same era.
S. Jandura and G. Pupillo, Time-Optimal Two- and Three-Qubit Gates for Rydberg Atoms, Quantum 6
2022
Later among the works it cites.
T. Bothwell, C. J. Kennedy, A. Aeppli, D. Kedar, J. M. Robinson, E. Oelker, A. Staron, and J. Ye, Resolving the gravitational redshift across a millimetre-scale atomic sample, Nature 602
2022
Later among the works it cites.
X. Zheng, J. Dolde, V. Lochab, B. N. Merriman, H. Li, and S. Kolkowitz, Differential clock comparisons with a multiplexed optical lattice clock, Nature 602
2022
Later among the works it cites.
N. Schine, A. W. Young, W. J. Eckner, M. J. Martin, and A. M. Kaufman, Long-lived Bell states in an array of optical clock qubits, Nat. Phys. 18
2022
Later among the works it cites.
C. D. Marciniak, T. Feldker, I. Pogorelov, R. Kaubruegger, D. V. Vasilyev, R. van Bijnen, P. Schindler, P. Zoller, R. Blatt, and T. Monz, Optimal metrology with programmable quantum sensors, Nature 603
2022
Later among the works it cites.
B. Nichol, R. Srinivas, D. Nadlinger, P. Drmota, D. Main, G. Araneda, C. Ballance, and D. Lucas, An elementary quantum network of entangled optical atomic clocks, Nature 609
2022
Later among the works it cites.
A. W. Young, W. J. Eckner, N. Schine, A. M. Childs, and A. M. Kaufman, Tweezer-programmable 2D quantum walks in a Hubbard-regime lattice, Science 377
2022
Later among the works it cites.
W. J. Eckner, N. Darkwah Oppong, A. Cao, A. W. Young, W. R. Milner, J. M. Robinson, J. Ye, and A. M. Kaufman, Realizing spin squeezing with Rydberg interactions in an optical clock, Nature 621
2023
Later among the works it cites.
S. J. Evered, D. Bluvstein, M. Kalinowski, S. Ebadi, T. Manovitz, H. Zhou, S. H. Li, A. A. Geim, T. T. Wang, N. Maskara, et al. , High-fidelity parallel entangling gates on a neutral atom quantum computer, Nature 622
2023
Later among the works it cites.
S. Ma, G. Liu, P. Peng, B. Zhang, S. Jandura, J. Claes, A. P. Burgers, G. Pupillo, S. Puri, and J. D. Thompson, High-fidelity gates with mid-circuit erasure conversion in a metastable neutral atom qubit, Nature 622
2023
Later among the works it cites.
S. A. Moses, C. H. Baldwin, M. S. Allman, R. Ancona, L. Ascarrunz, C. Barnes, J. Bartolotta, B. Bjork, P. Blanchard, M. Bohn, et al. , A race-track trapped-ion quantum processor, Phys. Rev. X 13
2023
Later among the works it cites.
J. W. Lis, A. Senoo, W. F. McGrew, F. Rönchen, A. Jenkins, and A. M. Kaufman, Midcircuit operations using the omg architecture in neutral atom arrays, Phys. Rev. X 13
2023
Later among the works it cites.
S. Jandura, J. D. Thompson, and G. Pupillo, Optimizing Rydberg Gates for Logical-Qubit Performance, PRX Quantum 4
2023
Later among the works it cites.
J. M. Robinson, M. Miklos, Y. M. Tso, C. J. Kennedy, D. Kedar, J. K. Thompson, and J. Ye, Direct comparison of two spin-squeezed optical clock ensembles at the 10 − 17 10^{-17} level, Nat. Phys. 20
2024
Closest in time.
A. L. Shaw, R. Finkelstein, R. B.-S. Tsai, P. Scholl, T. H. Yoon, J. Choi, and M. Endres, Multi-ensemble metrology by programming local rotations with atom movements, Nat. Phys. 20
2024
Closest in time.
D. Bluvstein, S. J. Evered, A. A. Geim, S. H. Li, H. Zhou, T. Manovitz, S. Ebadi, M. Cain, M. Kalinowski, D. Hangleiter, et al. , Logical quantum processor based on reconfigurable atom arrays, Nature 626
2024
Closest in time.
2024
Closest in time.
2024
Closest in time.
2024
Closest in time.
2024
Closest in time.
A. W. Young, S. Geller, W. J. Eckner, N. Schine, S. Glancy, E. Knill, and A. M. Kaufman, An atomic boson sampler, Nature 629
2024
Closest in time.
X. Zheng, J. Dolde, and S. Kolkowitz, Reducing the instability of an optical lattice clock using multiple atomic ensembles, Phys. Rev. X 14
2024
Closest in time.