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An important consideration in miniaturizing transistors is maximizing the coupling between the gate and the semiconductor channel. A nanowire with a coaxial metal gate provides optimal gate-channel coupling, but has only been realized for…

介观与纳米尺度物理 · 物理学 2012-01-19 Kristian Storm , Gustav Nylund , Lars Samuelson , Adam P. Micolich

We introduce a fabrication method for gate-all-around nanowire field-effect transistors. Single nanowires were aligned perpendicular to underlying bottom gates using a resist-trench alignment technique. Top gates were then defined aligned…

In this paper, we have experimentally demonstrated, for the first time, III-V 4D transistors with vertically stacked InGaAs nanowire (NW) channels and gate-all-around (GAA) architecture. Novel process technology enabling the transition from…

介观与纳米尺度物理 · 物理学 2012-12-19 J. J. Gu , X. W. Wang , J. Shao , A. T. Neal , M. J. Manfra , R. G. Gordon , P. D. Ye

We present a simple fabrication technique for lateral nanowire wrap-gate devices with high capacitive coupling and field-effect mobility. Our process uses e-beam lithography with a single resist-spinning step, and does not require chemical…

We report on fabrication of single-electron transistors using InAs nanowires with epitaxial aluminium with fixed tunnel barriers made of aluminium oxide. The devices exhibit a hard superconducting gap induced by the proximized aluminium…

介观与纳米尺度物理 · 物理学 2016-11-29 M. Taupin , E. Mannila , P. Krogstrup , V. F. Maisi , H. Nguyen , S. M. Albrecht , J. Nygard , C. M. Marcus , J. P. Pekola

A nanoscale device consisting of a metal nanowire, a dielectric, and a gate is proposed. A combination of quantum and thermal stochastic effects enable the device to have multiple functionalities, serving alternately as a transistor, a…

介观与纳米尺度物理 · 物理学 2010-09-06 J. Bürki , C. A. Stafford , D. L. Stein

We present a novel reconfigurable metal-oxide-semiconductor multi-gate transistor that can host a quadruple quantum dot in silicon. The device consist of an industrial quadruple-gate silicon nanowire field-effect transistor. Exploiting the…

介观与纳米尺度物理 · 物理学 2016-06-22 A. C. Betz , M. L. V. Tagliaferri , M. Vinet , M. Broström , M. Sanquer , A. J. Ferguson , M. F. Gonzalez-Zalba

GaAs was central to the development of quantum devices but is rarely used for nanowire-based quantum devices with InAs, InSb and SiGe instead taking the leading role. p-type GaAs nanowires offer a path to studying strongly-confined 0D and…

介观与纳米尺度物理 · 物理学 2017-04-14 A. R. Ullah , J. G. Gluschke , P. Krogstrup , C. B. Sørensen , J. Nygård , A. P. Micolich

We report fabrication and measurement of a device where closely-placed two parallel InAs nanowires (NWs) are contacted by source and drain normal metal electrodes. Established technique includes selective deposition of double nanowires onto…

介观与纳米尺度物理 · 物理学 2018-01-17 S. Baba , S. Matsuo , H. Kamata , R. S. Deacon , A. Oiwa K. Li , H. Q. Xu , S. Tarucha

As transistor footprint scales down to sub-10 nm regime, the process development for advancing to further technology nodes has encountered slowdowns. Achieving greater functionality within a single chip requires concurrent development at…

应用物理 · 物理学 2023-09-19 Zijing Zhao , Shaloo Rakheja , Wenjuan Zhu

We study sequential tunneling of magnetic excitations in nonitinerant systems (either magnons or spinons) through triangular molecular magnets. It is known that the quantum state of such molecular magnets can be controlled by application of…

介观与纳米尺度物理 · 物理学 2013-07-30 Kevin A. van Hoogdalem , Daniel Loss

Ultrathin InAs nanowires (NW) with one-dimensional (1D) sub-band structure are promising materials for advanced quantum-electronic devices, where dimensions in the sub-30 nm diameter limit together with post-CMOS integration scenarios on Si…

Gate-all-around nanowire transistor, due to its extremely tight electrostatic control and vertical integration capability, is a highly promising candidate for sub-5 nm technology node. In particular, the junctionless nanowire transistors…

Transistors, regardless of their size, rely on electrical gates to control the conductance between source and drain contacts. In atomic-scale transistors, this conductance is exquisitely sensitive to single electrons hopping via individual…

Quantum dots realized in InAs are versatile systems to study the effect of spin-orbit interaction on the spin coherence, as well as the possibility to manipulate single spins using an electric field. We present transport measurements on…

介观与纳米尺度物理 · 物理学 2009-11-11 I. Shorubalko , A. Pfund , R. Leturcq , M. T. Borgström , F. Gramm , E. Müller , E. Gini , K. Ensslin

We report low-dimensional tunneling in an independently contacted vertically coupled quantum wire system. This nanostructure is fabricated in a high quality GaAs/AlGaAs parallel double quantum well heterostructure. Using a novel flip chip…

介观与纳米尺度物理 · 物理学 2009-11-10 E. Bielejec , J. A. Seamons , J. L. Reno , M. P. Lilly

We present a capacitance-voltage study for arrays of vertical InAs nanowires. MOS capacitors are obtained by insulating the nanowires with a conformal 10nm HfO2 layer and using a top Cr/Au metallization as one of the capacitor's electrodes.…

We report the operation of a field-effect transistor based on a single InAs nanowire gated by an ionic liquid. Liquid gating yields very efficient carrier modulation with a transconductance value thirty time larger than standard back gating…

We investigate gate-defined quantum dots in silicon on insulator nanowire field-effect transistors fabricated using a foundry-compatible fully-depleted silicon-on-insulator (FD-SOI) process. A series of split gates wrapped over the silicon…

介观与纳米尺度物理 · 物理学 2020-12-02 Jingyu Duan , Michael A. Fogarty , James Williams , Louis Hutin , Maud Vinet , John J. L. Morton

A nanoscale variable resistor consisting of a metal nanowire (active element), a dielectric, and a gate, is proposed. By means of the gate voltage, stochastic transitions between different conducting states of the nanowire can be induced,…

介观与纳米尺度物理 · 物理学 2008-07-10 J. Bürki , C. A. Stafford , D. L. Stein
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