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Related papers: The 0.7 anomaly in quantum point contact; many-bod…

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A consistent approach in forming the 0.7 structure by using a quantum dot rather than a quantum point contact is demonstrated. With this scheme, it was possible to tune on and off the 0.7 structure. The 0.7 structure continuously evolved…

Mesoscale and Nanoscale Physics · Physics 2008-06-11 Yunchul Chung , Sanghyun Jo , Dong-In Chang , Hu-Jong Lee , M. Zaffalon , V. Umansky , M. Heiblum

The origin of the 0.7-conductance anomaly in quantum point contacts (QPCs) has been a subject of lively discussions since its discovery more than 10 years ago. In a recent letter, based on spin density functional theory (DFT), Rejec and…

Mesoscale and Nanoscale Physics · Physics 2007-05-23 S. Ihnatsenka , I. V. Zozoulenko

We demonstrate that conductance anomalies can arise in a clean, adiabatic quantum point contact when a channel is partially transmitting. Even for a smooth barrier potential, backscattering induces Friedel oscillations that, via electron…

Mesoscale and Nanoscale Physics · Physics 2026-05-14 Donghao Liu , Dmitri Gutman

Linear conductance below $2e^2/h$ shows resonance peaks in highly asymmetric quantum point contacts (QPCs). As the channel length increases, the number of peaks also increases. At the same time, differential conductance exhibits zero bias…

Mesoscale and Nanoscale Physics · Physics 2013-10-01 Hao Zhang , Phillip M. Wu , Albert M. Chang

Experiments on quantum point contacts have highlighted an anomalous conductance plateau at $0.7 (2e^2/h)$, with features suggestive of the Kondo effect. Here we present an Anderson model for transport through a point contact which we…

Mesoscale and Nanoscale Physics · Physics 2009-11-07 Yigal Meir , Kenji Hirose , Ned S. Wingreen

The 0.7 conductance anomaly in the quantized conductance of trench etched GaAs quantum point contacts is studied experimentally. The temperature dependence of the anomaly measured with vanishing source-drain bias reveals the same activated…

Mesoscale and Nanoscale Physics · Physics 2007-05-23 A. Kristensen , H. Bruus , A. Forchel , J. B. Jensen , P. E. Lindelof , M. Michel , J. Nygard , C. B. Sorensen

We investigate the transmission of electrons through a quantum point contact by using a quasi-one-dimensional model with a local bound state below the band bottom. While the complete transmission in lower channels gives rise to plateaus of…

Mesoscale and Nanoscale Physics · Physics 2007-05-23 Ye Xiong , X. C. Xie , Shi-jie Xiong

Quantum point contacts (QPCs) have shown promise as nanoscale spin-selective components for spintronic applications and are of fundamental interest in the study of electron many-body effects such as the 0.7 x 2e^2/h anomaly. We report on…

Mesoscale and Nanoscale Physics · Physics 2012-08-24 A. M. Burke , O. Klochan , I. Farrer , D. A. Ritchie , A. R. Hamilton , A. P. Micolich

The 0.7 (2e^2/h) conductance anomaly is studied in strongly confined, etched GaAs/GaAlAs quantum point contacts, by measuring the differential conductance as a function of source-drain and gate bias as well as a function of temperature. We…

Mesoscale and Nanoscale Physics · Physics 2009-01-20 A. Kristensen , H. Bruus , A. E. Hansen , J. B. Jensen , P. E. Lindelof , C. J. Marckmann , J. Nygard , C. B. Sorensen , F. Beuscher , A. Forchel , M. Michel

Besides the usual conductance plateaus at multiples of 2e2/h, quantum point contacts typically show an extra plateau at ~ 0.7(2e2/h), believed to arise from electron-electron interactions that prohibit the two spin channels from being…

Mesoscale and Nanoscale Physics · Physics 2009-11-07 S. M. Cronenwett , H. J. Lynch , D. Goldhaber-Gordon , L. P. Kouwenhoven , C. M. Marcus , K. Hirose , N. S. Wingreen , V. Umansky

We present a simple phenomenological model which offers a unifying interpretation of the experimental observations on the 0.7 conductance anomaly of quantum point contacts. The model utilizes the Landauer-Buttiker formalism and involves…

Mesoscale and Nanoscale Physics · Physics 2007-05-23 Henrik Bruus , Vadim V. Cheianov , Karsten Flensberg

We study electronic transport through a quantum point contact, where the interaction between the electrons is approximated by a contact potential. Our numerical approach is based on the non-equilibrium Green function technique which is…

Mesoscale and Nanoscale Physics · Physics 2007-05-23 Andreas Lassl , Peter Schlagheck , Klaus Richter

It has been shown within the Landauer single-channel approach that the presence of the 0.7 anomaly in the conductance of a ballistic microcontact and the respective plateau in the thermopower implies unusual pinning of the potential barrier…

Mesoscale and Nanoscale Physics · Physics 2015-06-15 O. A. Tkachenko , V. A. Tkachenko

Small differential conductance oscillations as a function of source-drain bias were observed and systematically studied in an asymmetric quantum point contact (QPC). These oscillations become significantly suppressed in a small in-plane…

Mesoscale and Nanoscale Physics · Physics 2015-06-03 Hao Zhang , Phillip M. Wu , Albert M. Chang

We consider interaction effects in quantum point contacts on the first quantization plateau, taking into account all non momentum-conserving processes. We compute low-temperature linear and non-linear conductance, shot noise, and…

Mesoscale and Nanoscale Physics · Physics 2007-07-16 Anders Mathias Lunde , Alessandro De Martino , Reinhold Egger , Karsten Flensberg

A non-equilibrium Green function formalism (NEGF) is used to study the conductance of a side-gated quantum point contact (QPC) in the presence of lateral spin-orbit coupling (LSOC). A small difference of bias voltage between the two side…

Mesoscale and Nanoscale Physics · Physics 2015-05-13 J. Wan , M. Cahay , P. Debray , R. Newrock

Scanning gate microscopy is used to locally investigate electron transport in a high-mobility two-dimensional electron gas formed in a GaAs/AlGaAs heterostructure. Using quantum point contacts (QPC) we observe branches caused by electron…

Mesoscale and Nanoscale Physics · Physics 2015-06-05 A. A. Kozikov , C. Rössler , T. Ihn , K. Ensslin , C. Reichl , W. Wegscheider

Self-consistent modelling based on local spin-density formalism is employed to calculate conductance of quantum point contacts at finite temperatures. The total electrostatic potential exhibits spin-dependent splitting, which persists at…

Mesoscale and Nanoscale Physics · Physics 2007-05-23 A. M. Bychkov , T. M. Stace

The unexpected "0.7" plateau of conductance quantisation is usually observed for ballistic one-dimensional devices. In this work we study a quasi-ballistic quantum wire, for which the disorder induced backscattering reduces the conductance…

Mesoscale and Nanoscale Physics · Physics 2009-03-24 M. Czapkiewicz , P. Zagrajek , J. Wrobel , G. Grabecki , K. Fronc , T. Dietl , Y. Ono , S. Matsuzaka , H. Ohno

We describe a phenomenological model for the conductance feature near $0.7 \times 2e^2/h$ that occurs in quantum point contacts. We focus on the transconductance at finite source-drain bias and contrast our model with the results expected…

Mesoscale and Nanoscale Physics · Physics 2009-11-11 D. J. Reilly , Y. Zhang , L. DiCarlo