REVIEW 1 major objections 2 minor 21 references
Early Experiments on Macroscopic Quantum Tunneling
T0 review · 1 major / 2 minor · reviewed 2026-06-28 · grok-4.3
Pith's one-line read The first experimental results interpreted as macroscopic quantum tunneling came from 1979 Leiden studies on niobium point contacts in rf SQUIDs.
desk verdict This is a short historical review arguing that 1979 Leiden Nb point-contact rf-SQUID data were the first interpreted as MQT, but it adds no new analysis or data checks. read the letter →
The pith
A machine-rendered reading of the paper's core claim, the machinery that carries it, and where it could break.
The reading
What carries the argument
Low-capacitance niobium point contacts arranged in an rf SQUID configuration, which enabled observation of escape rates from the zero-voltage state at temperatures where tunneling could be distinguished from thermal activation.
What would settle it
Access to the original raw data from the 1979 Leiden experiments showing temperature-dependent escape rates fully consistent with thermal activation and no temperature-independent regime.
Extended reading notes
Core claim
The central claim is that the first experimental results interpreted as MQT were reported in 1980 based on studies done at Leiden University in 1979 on low capacitance Niobium point contacts in an rf SQUID configuration.
Load-bearing premise
The 1979-1980 Leiden experimental data can be accurately reconstructed and interpreted as MQT using the theoretical frameworks cited without access to original raw data or modern re-analysis.
Editorial extensions
If this is right
- The 1980 Leiden report constitutes the chronologically first published interpretation of MQT in Josephson systems.
- The rf SQUID geometry with point-contact weak links allowed access to the low capacitance regime needed for observable quantum escape.
- Data taken between 1 and 4.2 K provided the temperature window used to separate tunneling from classical thermal activation.
- The observations were framed using the 1969 Ivanchenko-Zilberman model for biased junctions and the 1978 Leggett model for closed loops.
Reading between the lines
- Re-examination of similar historical Josephson data with present-day noise characterization could test the original tunneling assignment.
- The early reliance on point contacts shows how junction capacitance directly controls visibility of macroscopic quantum effects.
Editorial analysis
A structured set of objections, weighed in public.
Referee Report
Summary. The paper claims that the first experimental results interpreted as Macroscopic Quantum Tunneling (MQT) were reported in 1980 from 1979 studies at Leiden University on low-capacitance Niobium point contacts in an rf SQUID configuration at 1-4.2 K. These preceded the 1985 Clarke-Devoret-Martinis work and were inspired by Ivanchenko-Zilberman (1969) predictions for current-biased Josephson junctions and Leggett (1978) on closed loops with weak links. The manuscript offers a historical retrospective on these early experiments.
Significance. If the chronological and interpretive claims hold, the paper provides archival value by documenting preliminary MQT efforts in superconducting systems and crediting the Leiden group's contributions to the field's early history. It highlights the transition from 1969-1978 theory to experiment but introduces no new data, re-analysis, or falsifiable predictions, limiting its impact to historiography rather than advancing current understanding of MQT.
major comments (1)
- [Abstract] Abstract: The central claim that the 1979 Leiden Nb point-contact rf-SQUID data constitute the first MQT observations requires that the observed switching statistics exhibit the predicted signatures (temperature-independent escape rate below crossover T, consistent with Ivanchenko-Zilberman and Leggett models) rather than thermal activation. The manuscript provides no original I-V traces, switching histograms, parameter extraction, or quantitative comparison from the 1979 run, leaving the mapping from raw observations to MQT as an unverified assertion.
minor comments (2)
- The manuscript should include explicit references to the 1980 publication reporting the Leiden results and any contemporary discussions of their interpretation.
- Clarify the source material for the historical account (e.g., published records only, or access to lab notes) to allow readers to assess the strength of the retrospective MQT assignment.
Simulated Author's Rebuttal
We thank the referee for their careful reading of our historical review manuscript. The comment correctly identifies that the paper does not re-present or quantitatively re-analyze the original 1979 data. We address this below and indicate the revisions we will make.
read point-by-point responses
-
Referee: [Abstract] Abstract: The central claim that the 1979 Leiden Nb point-contact rf-SQUID data constitute the first MQT observations requires that the observed switching statistics exhibit the predicted signatures (temperature-independent escape rate below crossover T, consistent with Ivanchenko-Zilberman and Leggett models) rather than thermal activation. The manuscript provides no original I-V traces, switching histograms, parameter extraction, or quantitative comparison from the 1979 run, leaving the mapping from raw observations to MQT as an unverified assertion.
Authors: We agree that the manuscript, as a historical retrospective, does not include the original I-V traces, switching histograms, or new quantitative comparisons from the 1979 Leiden experiments; such data would be outside the scope of a review documenting the sequence of interpretations in the published literature. The central claim is that the 1980 reports were the first to interpret the observations as MQT, drawing on the Ivanchenko-Zilberman and Leggett frameworks then available. To address the referee's point, we will revise the abstract and introduction to state explicitly that the paper records the historical interpretations advanced at the time rather than asserting or re-verifying the presence of the predicted MQT signatures. We will also add a sentence directing readers to the original 1980 publications for the detailed experimental records. revision: yes
Circularity Check
No circularity: historical narrative without derivations or load-bearing self-references
full rationale
The paper is a chronological historical review of 1979-1980 Leiden experiments on Nb point contacts, citing Ivanchenko-Zilberman (1969) and Leggett (1978) as inspirational theory. No equations, predictions, fitted parameters, or derivations appear. The central claim is a factual assertion about publication chronology and interpretation at the time; it does not reduce any result to its own inputs by construction, nor rely on self-citation chains for uniqueness or ansatz. External citations are to independent prior work and do not create circularity under the defined patterns.
Assumptions & free parameters
Cite this review
Pith. "Pith review of Early Experiments on Macroscopic Quantum Tunneling." pith.science (2026). https://pith.science/paper/HGKZ6QWD
@misc{pith2026260602770,
author = {Pith},
title = {Pith review of: Early Experiments on Macroscopic Quantum Tunneling},
year = {2026},
howpublished = {\url{https://pith.science/paper/HGKZ6QWD}},
note = {Machine review of arXiv:2606.02770}
}
read the original abstract
Before conclusive evidence of Macroscopic Quantum Tunneling, MQT, was published by Clarke, Devoret and Martinis in 1985, several other groups reported experimental results interpreted as MQT. The first, in chronological order, was in 1980 based on studies done at Leiden University in 1979. This paper looks back at these experiments on low capacitance Niobium point contacts in an rf SQUID, radio-frequency Superconducting Quantum Interference Device, configuration at temperatures between 1 and 4.2 K. The research was inspired by the theoretical predictions by Ivanchenko and Zilberman in 1969 on MQT in current-biased Josephson junctions and by Leggett in 1978 on MQT in closed loops with a superconducting weak link.
Reference graph
Works this paper leans on
-
[1]
Devoret, J.M
M.H. Devoret, J.M. Martinis, and J. Clarke. Mea- surement of macroscopic quantum tunneling out of a zero-voltage state of a current-biased josephson junc- tion.Phys. Rev. Lett., 55:1908–1911, 1985
1908
-
[2]
Martinis, M.H
J.M. Martinis, M.H. Devoret, and J. Clarke. Energy- level quantization in the zero-voltage state of a current- biased josephson junction.Phys. Rev. Lett., 55:1543– 1546, 1985
1985
-
[3]
Ivanchenko and L.A
Y .M. Ivanchenko and L.A. Zil’berman. The joseph- son effect in small tunnel contacts.Sov. Phys. JETP, 28(6):1272–1276, 1969
1969
-
[4]
A.J. Leggett. Prospects in ultralow temperature physics. J. Phys. Colloques, 39(C6):1264–1269, 1978
1978
-
[5]
V oss and R.A
R.F. V oss and R.A. Webb. Macroscopic quantum tun- neling in 1-µm nb josephson junctions.Phys. Rev. Lett., 47:265–268, 1981
1981
-
[6]
Jackel, J.P
L.D. Jackel, J.P. Gordon, E.L. Hu, R.E. Howard, L.A. Fetter, D.M. Tennant, R.W. Epworth, and J. Kurkijarvi. Decay of the zero-voltage state in small-area, high- current-density josephson junctions.Phys. Rev. Lett., 47:697–700, 1981
1981
-
[7]
den Boer and R
W. den Boer and R. de Bruyn Ouboter. Flux transi- tion mechanisms in superconducting loops closed with a low capacitance point contact.Physica B+C, 98(3):185– 191, 1980
1980
-
[8]
Prance, A.P
R.J. Prance, A.P. Long, T.D. Clarke, A. Widom, J.E. Mutton, J. Sacco, M.W. Potts, G. Megaloudis, and F. Goodall. Macroscopic quantum electrodynamic ef- fects in a superconducting ring containing a josephson weak link.Nature, 289:543–549, 1981
1981
Show all 21 references
-
[9]
Turutanov
O.G. Turutanov. Nobel prize and the contribution of ukrainian scientists to the understanding of quantum phenomena, in particular the behavior of macroscopic quantum systems (nobel prize in physics 2025).Visn. Nac. Akad. Nauk Ukr., 12:20–30, 2025
2025
-
[10]
de Bruyn Ouboter
R. de Bruyn Ouboter. Heike kamerlingh onnes’s discovery of superconductivity.Scientific American, 276(3):98–103, 1997
1997
-
[11]
de Bruyn Ouboter
R. de Bruyn Ouboter. Superconductivity: Discoveries during the early years of low temperature research at leiden 1908–1914.IEEE Trans. Magn., 23(2):355–370, 1987. 6
1908
-
[12]
T.P. Das, R. De Bruyn Ouboter, and K.W. Taconis. in proc. 9th int. conf. on low temp. phys. In J.G. Daunt, D.O. Edwards, F.J. Milford, and M. Yaqub, editors, Proc. 9th Int. Conf. on Low Temp. Phys., Columbus, Ohio, page 1253, New York, 1965. Plenum Press
1965
-
[13]
Tolner and C.D
H. Tolner and C.D. Andriesse. High impedance point contact josephson junctions.IEEE Trans. Magn., 11:866–870, 1975
1975
-
[14]
Dmitrenko, G.M
I.M. Dmitrenko, G.M. Tsoi, and V .I. Shnyrkov. Macro- scopic quantum tunneling in a system with dissipation. Sov. J. Low Temp. Phys., 8(6):330, 1982
1982
-
[15]
Caldeira and A.J
A.O. Caldeira and A.J. Leggett. Influence of dissipation on quantum tunneling in macroscopic systems.Phys. Rev. Lett., 46:211–214, 1981
1981
-
[16]
Altimiras, D
C. Altimiras, D. Esteve, C. Girit, H. le Sueur, and P. Joyez. Absence of a dissipative quan- tum phase transition in josephson junctions: Theory. arXiv:2312.14754v5 [cond-mat.supr-com] 15 Jan 2025, 2025
2025
-
[17]
Murani, N
A. Murani, N. Bourlet, H. le Sueur, F. Portier, C. Al- timiras, D. Esteve, H. Grabert, J. Stockburger, J. Anker- hold, and P. Joyez. Absence of a dissipative quantum phase transition in josephson junctions.Phys. Rev. X, 10(2):021003, 2020
2020
-
[18]
Clarke, A.N
J. Clarke, A.N. Cleland, M.H. Devoret, D. Esteve, and J.M. Martinis. Quantum mechanics of a macroscopic variable: The phase difference of a josephson junction. Science, 239:992–997, 1988
1988
-
[19]
Nakamura, Yu.A
Y . Nakamura, Yu.A. Pashkin, and J.S. Tsai. Coher- ent control of macroscopic quantum states in a single- cooper-pair box.Nature, 398:786–788, 1999
1999
-
[20]
Mooij, T.P
J.E. Mooij, T.P. Orlando, L. Levitov, L. Tian, C.H. van der Wal, and S. Lloyd. Josephson persistent-current qubit.Science, 285:1036–1039, 1999
1999
-
[21]
den Boer.Active Matrix Liquid Crystal Displays: Fundamentals and Applications
W. den Boer.Active Matrix Liquid Crystal Displays: Fundamentals and Applications. Newnes, a division of Elsevier, Oxford, 2005. 7
2005
Reviewed June 28, 2026 · model on record in the stance chip above.
Discussion (0). Continue with ORCID to comment.