960化工网
期刊名称:Nano Letters
期刊ISSN:1530-6984
期刊官方网站:http://pubs.acs.org/journal/nalefd
出版商:American Chemical Society (ACS)
出版周期:Monthly
影响因子:10.8
始发年份:2001
年文章数:1104
是否OA:否
A Unipolar Quantum Dot Diode Structure for Advanced Quantum Light Sources
Nano Letters ( IF 10.8 ) Pub Date : 2023-07-11 , DOI: 10.1021/acs.nanolett.3c01658
TimStrobel,JonasHWeber,MarcelSchmidt,LukasWagner,LenaEngel,MichaelJetter,AndreasDWieck,SimoneLPortalupi,ArneLudwig,PeterMichler
Triggered, indistinguishable single photons are crucial in various quantum photonic implementations. Here, we realize a novel n+–i–n++ diode structure embedding semiconductor quantum dots: the gated device enables spectral tuning of the transitions and deterministic control of the charged states. Blinking-free single-photon emission and high two-photon indistinguishability are observed. The line width’s temporal evolution is investigated across over 6 orders of magnitude time scales, combining photon-correlation Fourier spectroscopy, high-resolution photoluminescence spectroscopy, and two-photon interference (visibility of VTPI,2ns = (85.8 ± 2.2)% and VTPI,9ns = (78.3 ± 3.0)%). Most of the dots show no spectral broadening beyond ∼9 ns time scales, and the photons’ line width ((420 ± 30) MHz) deviates from the Fourier-transform limit by a factor of 1.68. The combined techniques verify that most dephasing mechanisms occur at time scales ≤2 ns, despite their modest impact. The presence of n-doping implies higher carrier mobility, enhancing the device’s appeal for high-speed tunable, high-performance quantum light sources.
Aharonov-Bohm Interference and Phase-Coherent Surface-State Transport in Topological Insulator Rings
Nano Letters ( IF 10.8 ) Pub Date : 2023-07-03 , DOI: 10.1021/acs.nanolett.3c00905
GerritBehner,AbdurRehmanJalil,DennisHeffels,JonasKölzer,KristofMoors,JonasMertens,ErikZimmermann,GregorMussler,PeterSchüffelgen,HansLüth,DetlevGrützmacher,ThomasSchäpers
We present low-temperature magnetotransport measurements on selectively grown Sb2Te3-based topological insulator ring structures. These devices display clear Aharonov-Bohm oscillations in the conductance originating from phase-coherent transport around the ring. The temperature dependence of the oscillation amplitude indicates that the Aharonov-Bohm oscillations originate from ballistic transport along the ring arms. We attribute these oscillations to the topological surface states. Further insight into the phase coherence is gained by comparing with similar Aharonov-Bohm-type oscillations in topological insulator nanoribbons exposed to an axial magnetic field. Here, quasi-ballistic phase-coherent transport is confirmed for closed-loop topological surface states in the transverse direction enclosing the nanoribbon. In contrast, the appearance of universal conductance fluctuations indicates phase-coherent transport in the diffusive regime, which is attributed to bulk carrier transport. Thus, it appears that even in the presence of diffusive p-type charge carriers in Aharonov-Bohm ring structures, phase-coherent quasi-ballistic transport of topological surface states is maintained over long distances.
An Antibody Engineered Metalloenzyme for Mediating Cell–Cell Communication and Activation of Immuno- and Chemotherapy
Nano Letters ( IF 10.8 ) Pub Date : 2023-07-03 , DOI: 10.1021/acs.nanolett.3c01186
ZhengweiLiu,ZhenqiLiu,MengyuSun,WentingZhang,JinsongRen,XiaogangQu
Artificial metalloenzymes (ArMs) are gaining much attention in life sciences. However, the function of the present ArMs for disease treatment is still in its infancy, which may impede the possible therapeutic potential. Herein, we construct an antibody engineered ArM by using the Fc region of IgG and bioorthogonal chemistry, which endows the ArM with the capability of manipulating cell–cell communication and bioorthogonal catalysis for tumor immuno- and chemotherapy. Specially, Fc-Pd ArM is modified on the cancer cell surface by metabolic glycoengineering to catalyze the bioorthogonal activation of prodrug for tumor chemotherapy. More importantly, the antibody-based ArM can mediate cell–cell communication between cancer cells and NK cells, activating the ADCC effect for immunotherapy. In vivo antitumor applications suggest that the ArM can not only eliminate primary tumor but also inhibit tumor lung metastasis. Our work provides a new attempt to develop artificial metalloenzymes with cell–cell communication the ability for bioorthogonal catalysis and combination therapy.
Antenna-Based Approach to Fine Control of Supercavity Mode Quality Factor in Metasurfaces
Nano Letters ( IF 10.8 ) Pub Date : 2023-07-05 , DOI: 10.1021/acs.nanolett.3c01141
SergeiLi,BinzeMa,QiangLi,MikhailVRybin
The utilization of photonic bound states in the continuum (BIC) is a very attractive approach for many applications requiring efficient resonators. High-Q modes related to symmetry-protected BIC are formed due to perturbation defined by an asymmetry parameter, and the smaller this parameter is, the bigger the Q factor can be achieved. Inevitable fabrication imperfectness limits precise control of the Q factor through the asymmetry parameter. Here we propose an antenna-based design of metasurfaces for accurate tailoring of the Q factor where stronger perturbation leads to the same effect in the conventional design. This approach allows the fabrication of samples with equipment having lower tolerance keeping the Q factor at the same level. Furthermore, our findings reveal two regimes of the Q factor scaling law with saturated and unsaturated resonances dependent on the ratio of antenna particles to all particles. The boundary is defined by the efficient scattering cross section of the metasurface constituent particles.
Can Adhesion Energy Optimize Interface Thermal Resistance at a Soft/Hard Material Interface?
Nano Letters ( IF 10.8 ) Pub Date : 2023-07-10 , DOI: 10.1021/acs.nanolett.3c01882
XiaxiaCheng,DongyiHe,ManZhou,PingZhang,ShutingWang,LinlinRen,RongSun,XiaoliangZeng
Thermal resistance at a soft/hard material interface plays an undisputed role in the development of electronic packaging, sensors, and medicine. Adhesion energy and phonon spectra match are two crucial parameters in determining the interfacial thermal resistance (ITR), but it is difficult to simultaneously achieve these two parameters in one system to reduce the ITR at the soft/hard material interface. Here, we report a design of an elastomer composite consisting of a polyurethane–thioctic acid copolymer and microscale spherical aluminum, which exhibits both high phonon spectra match and high adhesion energy (>1000 J/m2) with hard materials, thus leading to a low ITR of 0.03 mm2·K/W. We further develop a quantitative physically based model connecting the adhesion energy and ITR, revealing the key role the adhesion energy plays. This work serves to engineer the ITR at the soft/hard material interface from the aspect of adhesion energy, which will prompt a paradigm shift in the development of interface science.
Deterministic Fabrication of a Coupled Cavity–Emitter System in Hexagonal Boron Nitride
Nano Letters ( IF 10.8 ) Pub Date : 2023-07-07 , DOI: 10.1021/acs.nanolett.3c01836
MiladNonahal,JakeHorder,AngusGale,LuDing,ChiLi,MadelineHennessey,SonTungHa,MilosToth,IgorAharonovich
Light–matter interactions in optical cavities underpin many applications of integrated quantum photonics. Among various solid-state platforms, hexagonal boron nitride (hBN) is gaining considerable interest as a compelling van der Waals host of quantum emitters. However, progress to date has been limited by an inability to engineer simultaneously an hBN emitter and a narrow-band photonic resonator at a predetermined wavelength. Here, we overcome this problem and demonstrate deterministic fabrication of hBN nanobeam photonic crystal cavities with high quality factors over a broad spectral range (∼400 to 850 nm). We then fabricate a monolithic, coupled cavity–emitter system designed for a blue quantum emitter that has an emission wavelength of 436 nm and is induced deterministically by electron beam irradiation of the cavity hotspot. Our work constitutes a promising path to scalable on-chip quantum photonics and paves the way to quantum networks based on van der Waals materials.
Enhancing Intracellular Optical Performance and Stability of Engineered Nanomaterials via Aqueous Two-Phase Purification
Nano Letters ( IF 10.8 ) Pub Date : 2023-07-06 , DOI: 10.1021/acs.nanolett.3c01727
AceerNadeem,AidanKindopp,IanWyllie,LaurenHubert,JamesJoubert,SophieLucente,EwelinaRandall,PrakritVJena,DanielRoxbury
Supramolecular hybrids of DNA and single-walled carbon nanotubes (SWCNTs) have been introduced in numerous biosensing applications due to their unique optical properties. Recent aqueous two-phase (ATP) purification methods for SWCNTs have gained popularity by introducing specificity and homogeneity into the sensor design process. Using murine macrophages probed by near-infrared and Raman microscopies, we show that ATP purification increases the retention time of DNA-SWCNTs within cells while simultaneously enhancing the optical performance and stability of the engineered nanomaterial. Over a period of 6 h, we observe 45% brighter fluorescence intensity and no significant change in emission wavelength of ATP-purified DNA-SWCNTs relative to as-dispersed SWCNTs. These findings provide strong evidence of how cells differentially process engineered nanomaterials depending on their state of purification, lending to the future development of more robust and sensitive biosensors with desirable in vivo optical parameters using surfactant-based ATP systems with a subsequent exchange to biocompatible functionalization.
Glucose Oxidase Driven Hydrogen Sulfide-Releasing Nanocascade for Diabetic Infection Treatment
Nano Letters ( IF 10.8 ) Pub Date : 2023-07-17 , DOI: 10.1021/acs.nanolett.3c01771
YuxuanGe,FanRong,YujiaLu,ZixinWang,JinyuLiu,FeiXu,JunshengChen,WeiLi,YinWang
Diabetic ulcers have received much attention in recent years due to their high incidence and mortality, motivating the scientific community to develop various strategies for such chronic disease treatments. However, the therapeutic outcome of these approaches is highly compromised by invasive bacteria and a severe inflammatory microenvironment. To overcome these dilemmas, microenvironment-responsive self-delivery glucose oxidase@manganese sulfide (GOx@MnS) nanoparticles (NPs) are developed by one-step biomineralization. When they encounter the high glucose level in the ulcer site, GOx particles catalyze glucose to decrease the local pH and trigger the steady release of both manganese ions (Mn2+) and hydrogen sulfide (H2S). Mn2+ reacts with hydrogen peroxide to generate hydroxyl radicals for the elimination of bacterial infection; meanwhile, H2S is able to suppress the inflammatory response and accelerate diabetic wound healing through macrophage polarization. The excellent biocompatibility, strong bactericidal activity, and considerable immunomodulatory effect promise GOx@MnS NPs have great therapeutic potential for diabetic wound treatment.
Highly Robust and Strain-Resilient Thin Film Conductors Featuring Brittle Materials
Nano Letters ( IF 10.8 ) Pub Date : 2023-07-06 , DOI: 10.1021/acs.nanolett.3c01781
KaiChen,LinyuanZhang,KaiWu,ChaoYang,RuihongWang,CanhuaXu,JinyuZhang,GangLiu,JunSun
Stretchable conductors with stable electrical conductivity under various deformations are essential for wearable electronics, soft robots, and biointegrated devices. However, brittle film-based conductors on elastomeric substrates often suffer from unexpected electrical disconnection due to the obvious mechanical incompatibility between stiff films and soft substrates. We proposed a novel out-of-plane crack control strategy to achieve the strain-insensitive electrical performance of thin-film-based conductors, featuring conductive brittle materials, including nanocrystalline metals (Cu, Ag, Mo) and transparent oxides (ITO). Our metal film-based conductors exhibit an ultrahigh initial conductivity (1.3 × 105 S cm–1) and negligible resistance change (R/R0 = 1.5) over wide strain range from 0 to 130%, enabled by film-induced substrate cracking and liquid metal-induced electrical self-repairing. They could function well under multimodal deformations (stretching, bending, and twisting) and severe mechanical damage (cutting and puncturing). We demonstrated the strain-resilient electrical functionality of metal film-based conductors in a flexible light-emitting diode display that shows high mechanical compliance.
Heterosynaptic Plasticity in a Vertical Two-Terminal Synaptic Device
Nano Letters ( IF 10.8 ) Pub Date : 2023-07-06 , DOI: 10.1021/acs.nanolett.3c01057
HaenaYim,ChansooYoon,AhromRyu,SoYeonYoo,JuYoungKwon,GwangtaekOh,SohwiKim,EunHeeKee,KeunHwaChae,JungHoYoon,BaeHoPark,Ji-WonChoi
Vertical two-terminal synaptic devices based on resistive switching have shown great potential for emulating biological signal processing and implementing artificial intelligence learning circuitries. To mimic heterosynaptic behaviors in vertical two-terminal synaptic devices, an additional terminal is required for neuromodulator activity. However, adding an extra terminal, such as a gate of the field-effect transistor, may lead to low scalability. In this study, a vertical two-terminal Pt/bilayer Sr1.8Ag0.2Nb3O10 (SANO) nanosheet/Nb:SrTiO3 (Nb:STO) device emulates heterosynaptic plasticity by controlling the number of trap sites in the SANO nanosheet via modulation of the tunneling current. Similar to biological neuromodulation, we modulated the synaptic plasticity, pulsed pair facilitation, and cutoff frequency of a simple two-terminal device. Therefore, our synaptic device can add high-level learning such as associative learning to a neuromorphic system with a simple cross-bar array structure.
Highly Responsive Soft Electrothermal Actuator with High-Output Force Based on Polydimethylsiloxane (PDMS)-Coated Carbon Nanotube (CNT) Sponge
Nano Letters ( IF 10.8 ) Pub Date : 2023-07-10 , DOI: 10.1021/acs.nanolett.3c01458
BangzeZhou,MohamedAmineAouraghe,WeiChen,QiuranJiang,FujunXu
Recently, soft actuators have been found to have great potential for various applications due to their ability to be mechanically reconfigured in response to external stimuli. However, the balance between output force and considerable strain constrains their potential for further application. In this work, a novel soft electrothermal actuator was fabricated by a polydimethylsiloxane (PDMS)-coated carbon nanotube sponge (CNTS). The results showed that CNTS was heated to 365 °C in ∼1 s when triggered by a voltage of 3.5 V. Consequently, due to the large amount of air inside, the actuator expanded in 2.9 s, lifting up to ∼50 times its weight, indicating an ultrafast response and powerful output force. In addition, even in water, the soft actuator showed quick response at a voltage of 6 V. This air-expand strategy and soft actuator design is believed to open a new horizon in the development of electronic textiles, smart soft robots, and so on.
Inverted Wide-Bandgap 2D/3D Perovskite Solar Cells with >22% Efficiency and Low Voltage Loss
Nano Letters ( IF 10.8 ) Pub Date : 2023-07-11 , DOI: 10.1021/acs.nanolett.3c01962
ZonglongSong,JingYang,XiyueDong,RuiWang,YixinDong,DongxueLiu,YongshengLiu
Wide-bandgap perovskites play a key role in high-performance tandem solar cells, which have the potential to break the Schockley–Queisser limit. Here, a 2D/3D hybrid wide-bandgap perovskite was developed using octane-1,8-diaminium (ODA) as spacer. The incorporation of the ODA spacer can not only significantly reduce charge carrier nonradiative recombination loss but also inhibit phase separation. Moreover, with a synergy effect using butylammonium iodide (BAI) as a surface defect passivator, both the phase stability and device performance were further improved. Compared to the control inverted device with a VOC of 1.16 V and a PCE of 18.50%, the optimized PSCs based on a surface processed 2D/3D perovskite exhibit a superior high VOC of 1.26 V and a champion PCE of 22.19%, which is a record efficiency for wide-bandgap PSCs (Eg > 1.65 eV). This work provides a very effective strategy to suppress phase separation in wide-bandgap perovskites for highly efficient and stable solar cells.
Limitations of the Current–Phase Relation Measurements by an Asymmetric dc-SQUID
Nano Letters ( IF 10.8 ) Pub Date : 2023-07-10 , DOI: 10.1021/acs.nanolett.3c01970
IanBabich,AndreiKudriashov,DenisBaranov,VasilySStolyarov
Exotic quantum transport phenomena established in Josephson junctions (JJs) are reflected by a nonsinusoidal current–phase relation (CPR). The solidified approach to measuring the CPR is via an asymmetric dc-SQUID with a reference JJ that has a high critical current. We probed this method by measuring CPRs of hybrid JJs based on the 3D topological insulator (TI) Bi2Te2Se with a nanobridge acting as a reference JJ. We captured both highly skewed and sinusoidal critical current oscillations within single devices which contradict the uniqueness of the CPR. This implies that the widely used method provides inaccurate CPR measurement and leads to misinterpretation. It was shown that the accuracy of the CPR measurement is mediated by the asymmetry in derivatives of the CPRs but not in critical currents, as was previously thought. Finally, we provided considerations for an accurate CPR measurement via the most commonly used reference JJs.
Ordered Membrane Electrode Assembly with Drastically Enhanced Proton and Mass Transport for Proton Exchange Membrane Water Electrolysis
Nano Letters ( IF 10.8 ) Pub Date : 2023-07-10 , DOI: 10.1021/acs.nanolett.3c01331
BinTian,YaliLi,YiyangLiu,FandiNing,XiongDan,QinglinWen,LeiHe,CanHe,MinShen,XiaochunZhou
In this work, an ordered membrane electrode assembly (MEA) based on a cone Nafion array with gradient Nafion distribution, tightly bonded catalytic layer/proton exchange membrane (CL/PEM) interface, and abundant vertical channels has been engineered by an anodic aluminum oxide template and magnetron sputtering method. Benefiting from a highly efficient CL/PEM interface, plentiful proton transfer highways, and rapid oxygen bubble release, this ordered MEA achieves an ultralow Ir loading of 20.0 μg cm–2 and a high electrochemical active area by 8.7 times compared to traditional MEA with Ir loading of 1.0 mg cm–2. It yields a mass activity of 168 000 mA mgIr–1 cm–2 at 2.0 V, which is superior to most reported PEM electrolyzers. Notably, this ordered MEA maintains excellent durability at a current density of 500 mA cm–2. This work opens a simple, cost-effective, and scalable route to design ordered MEAs for proton exchange membrane water electrolysis.
Smooth, Chemically Altered Nucleating Platform for Abrupt Performance Enhancement of Ultrathin Cu-Layer-Based Transparent Electrodes
Nano Letters ( IF 10.8 ) Pub Date : 2023-07-11 , DOI: 10.1021/acs.nanolett.3c01546
TranThiBaoVo,JaeunLim,SiHyeonJoo,HeechangKim,TaehyeongLee,Jong-SeongBae,EunwookJeong,Min-SukKwon,JungheumYun,DoohoChoi
Rapid advances in flexible optoelectronic devices necessitate the concomitant development of high-performance, cost-efficient, and flexible transparent conductive electrodes (TCEs). This Letter reports an abrupt enhancement in the optoelectronic characteristics of ultrathin Cu-layer-based TCEs via Ar+-mediated modulation of the chemical and physical states of a ZnO support surface. This approach strongly regulates the growth mode for the subsequently deposited Cu layer, in addition to marked alteration to the ZnO/Cu interface states, resulting in exceptional TCE performance in the form of ZnO/Cu/ZnO TCEs. The resultant Haacke figure of merit (T10/Rs) of 0.063 Ω–1, 53% greater than that of the unaltered, otherwise identical structure, corresponds to a record-high value for Cu-layer-based TCEs. Moreover, the enhanced TCE performance in this approach is shown to be highly sustainable under severe simultaneous loadings of electrical, thermal, and mechanical stresses.
Photonic Artifacts in Ratiometric Luminescence Nanothermometry
Nano Letters ( IF 10.8 ) Pub Date : 2023-07-14 , DOI: 10.1021/acs.nanolett.3c01602
SanderJWVonk,ThomasPvanSwieten,ArioCocina,FreddyTRabouw
Ongoing developments in science and technology require temperature measurements at increasingly higher spatial resolutions. Nanocrystals with temperature-sensitive luminescence are a popular thermometer for these applications offering high precision and remote read-out. Here, we demonstrate that ratiometric luminescence thermometry experiments may suffer from systematic errors in nanostructured environments. We place lanthanide-based luminescent nanothermometers at controlled distances of up to 600 nm from a Au surface. Although this geometry supports no absorption or scattering resonances, distortion of the emission spectra of the thermometers due to the modified density of optical states results in temperature read-out errors of up to 250 K. Our simple analytical model explains the effects of thermometer emission frequencies, experimental equipment, and sample properties on the magnitude of the errors. We discuss the relevance of our findings in several experimental scenarios. Such errors do not always occur, but they are expected in measurements near reflecting interfaces or scattering objects.
Pure Chiral Polar Vortex Phase in PbTiO3/SrTiO3 Superlattices with Tunable Circular Dichroism
Nano Letters ( IF 10.8 ) Pub Date : 2023-07-14 , DOI: 10.1021/acs.nanolett.3c01744
SujitDas,MargaretRMcCarter,FernandoG\u00f3mez-Ortiz,Yun-LongTang,ZijianHong,AnirbanGhosh,PadraicShafer,PabloGarc\u00eda-Fern\u00e1ndez,JavierJunquera,LaneWMartin,RamamoorthyRamesh
Nontrivial polarization textures have been demonstrated in ferroelectric/dielectric superlattices, where the electrostatic, elastic, and different gradient energies compete in a delicate balance. When PbTiO3/SrTiO3 superlattices are grown on DyScO3, the coexistence of ferroelectric domains and vortex structure is observed for n = 12–20 unit cells. Here, we report an approach to achieve single-phase vortex structures in superlattices by controlling the epitaxial strain using Sr1.04Al0.12Ga0.35Ta0.50O3 substrates. The domain width follows Kittel’s law with the thickness of the ferroelectric PbTiO3 layers. A phase transition from vortex to a disordered phase with temperature is characterized by the correlation length. Resonant soft X-ray diffraction circular dichroism at the titanium L-edge reveals enhanced chirality with the thickness of the ferroelectric layer. These results are supported by second-principles simulations, which demonstrate that the integrated helicity increases with n. The stabilization of chiral single-phase polar vortices in ferroelectric/dielectric superlattices can enable novel optoelectronic devices with enhanced ferroelectric–light interaction.
Shell-Sheddable Polymeric Micelles Alleviate Oxidative Stress and Inflammation for Enhanced Ischemic Stroke Therapy
Nano Letters ( IF 10.8 ) Pub Date : 2023-07-04 , DOI: 10.1021/acs.nanolett.3c01567
ZhenhuaWang,JingmeiPan,RuitingYuan,MoChen,XingGuo,ShaobingZhou
As a ROS scavenger, resveratrol exerts a neuroprotective effect by polarizing the M1 microglia to the anti-inflammatory M2 phenotype for ischemic stroke treatment. However, the obstruction of the blood–brain barrier (BBB) seriously impairs the efficacy of resveratrol. Herein, we develop a stepwise targeting nanoplatform for enhanced ischemic stroke therapy, which is fabricated by pH-responsive poly(ethylene glycol)-acetal-polycaprolactone-poly(ethylene glycol) (PEG-Acetal-PCL-PEG) and modified with cRGD and triphenylphosphine (TPP) on a long PEG chain and a short PEG chain, respectively. The as-designed micelle system features effective BBB penetration through cRGD-mediated transcytosis. Once entering the ischemic brain tissues and endocytosed by microglia, the long PEG shell can be detached from the micelles in the acidic lysosomes, subsequently exposing TPP to target mitochondria. Thus, the micelles can effectively alleviate oxidative stress and inflammation by enhanced delivery of resveratrol to microglia mitochondria, reversing the microglia phenotype through the scavenging of ROS. This work offers a promising strategy to treat ischemia-reperfusion injury.
Robust Mutual Synchronization in Long Spin Hall Nano-oscillator Chains
Nano Letters ( IF 10.8 ) Pub Date : 2023-07-14 , DOI: 10.1021/acs.nanolett.3c02036
AkashKumar,HimanshuFulara,RomanKhymyn,ArtemLitvinenko,MohammadZahedinejad,MonaRajabali,XiaotianZhao,NilamaniBehera,AfshinHoushang,AhmadAAwad,JohanÅkerman
Mutual synchronization of N serially connected spintronic nano-oscillators boosts their coherence by N and peak power by N2. Increasing the number of synchronized nano-oscillators in chains holds significance for improved signal quality and emerging applications such as oscillator based unconventional computing. We successfully fabricate spin Hall nano-oscillator chains with up to 50 serially connected nanoconstrictions using W/NiFe, W/CoFeB/MgO, and NiFe/Pt stacks. Our experiments demonstrate robust and complete mutual synchronization of 21 nanoconstrictions at an operating frequency of 10 GHz, achieving line widths 79,000. As the number of mutually synchronized oscillators increases, we observe a quadratic increase in peak power, resulting in 400-fold higher peak power in long chains compared to individual nanoconstrictions. While chains longer than 21 nanoconstrictions also achieve complete mutual synchronization, it is less robust, and their signal quality does not improve significantly, as they tend to break into partially synchronized states.
Supercurrent, Multiple Andreev Reflections and Shapiro Steps in InAs Nanosheet Josephson Junctions
Nano Letters ( IF 10.8 ) Pub Date : 2023-07-14 , DOI: 10.1021/acs.nanolett.3c01450
ShiliYan,HaitianSu,DongPan,WeijieLi,ZhaozhengLyu,MoChen,XingjunWu,LiLu,JianhuaZhao,Ji-YinWang,HongqiXu
We report an experimental study of proximity induced superconductivity in planar Josephson junction devices made from free-standing InAs nanosheets. The nanosheets are grown by molecular beam epitaxy, and the Josephson junction devices are fabricated by directly contacting the nanosheets with superconductor Al electrodes. The fabricated devices are explored by low-temperature carrier transport measurements. The measurements show that the devices exhibit a gate-tunable supercurrent, multiple Andreev reflections, and a good quality superconductor-semiconductor interface. The superconducting characteristics of the Josephson junctions are investigated at different magnetic fields and temperatures and are analyzed based on the Bardeen–Cooper–Schrieffer (BCS) theory. The measurements of the ac Josephson effect are also conducted under microwave radiations with different radiation powers and frequencies, and integer Shapiro steps are observed. Our work demonstrates that InAs nanosheet based hybrid devices are desired systems for investigating the forefront of physics, such as two-dimensional topological superconductivity.
中科院SCI期刊分区
大类学科小类学科TOP综述
工程技术1区CHEMISTRY, MULTIDISCIPLINARY 化学综合1区
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自引率H-indexSCI收录状况PubMed Central (PML)
4.50381Science Citation Index Science Citation Index Expanded
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