莱速科技

  • K2-ASOPS 异步光学采样系统
  • K2-ASOPS 异步光学采样系统

    瑞士K2photonics K2-ASOPS 异步光学采样系统,泵浦 - 探测(ASOPS 异步光学采样)测量的理想设备,低重频单腔双光梳激光器。应用:泵浦 - 探测采样、薄膜检测、气体传感与工业过程控制、精密测距。


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产品详情

瑞士K2photonics K2-ASOPS 异步光学采样系统,泵浦 - 探测(ASOPS 异步光学采样)测量的理想设备,低重频单腔双光梳激光器。应用:泵浦 - 探测采样、薄膜检测、气体传感与工业过程控制、精密测距。




泵浦 - 探测(ASOPS 异步光学采样)测量的理想设备,低重频单腔双光梳激光器

核心参数

  • 两路空间分离脉冲序列,单路输出功率>1.5 瓦

    脉冲宽度<250 飞秒

    亚周期级相对时间抖动

    超低相对强度噪声

    基模高斯光束输出

    重复频率差可调,且长期稳定

    设备结构高度紧凑

    全自动交钥匙设备,可 7×24 小时连续运行

产品说明

单台K2-ASOPS输出两路锁模飞秒激光器(光学频率梳),二者脉冲重复频率存在微小差值。时域上,设备可高速扫描最大 16ns的光程差;频域上,通过外差探测,每一对梳齿均可产生拍频信号。K2-ASOPS采用创新的共腔结构,仅依靠自由运转即可实现超低噪声。两套光梳具备被动自稳定特性,两路光梳的强度噪声、时序抖动与相位噪声高度关联。整机仅配备单一激光腔,无需高速锁相电路与光放大模块,大幅简化传统双光梳、异步光学采样设备的复杂结构,同时兼具体积小巧、性能优异的优势。

可选配置

  • 集成二次谐波模块

    集成三次谐波模块

    风冷被动散热 / 水冷主动散热

    重复频率调控模块

    超连续光谱发生选配模块(SCG)

应用领域

  • 泵浦 - 探测采样、薄膜检测、气体传感与工业过程控制、精密测距




k2photonics 致力于实现优异性能。产品规格可能发生变更,如需最新机型参数,请与大陆合作伙伴莱速科技咨询 13545051195。

技术规格

  • 单路光梳输出功率:>1.5 W
    脉冲宽度:<250 fs,纯净双曲正割平方脉冲
    重复频率:可选 60 MHz / 80 MHz
    单脉冲能量:>25 nJ
    中心波长:1050±10 nm
    光束质量因子 M²:<1.1
    单路光梳相对强度噪声(RIN):200 kHz 以上频段<-160 dBc/Hz

双光梳专项参数

  • 重复频率差:0–1000 Hz 连续可调
    相对时序噪声:100 Hz~100 kHz 带宽内低于 10 fs

二次谐波(SHG)选配模块

  • 中心波长:525±5 nm
    单路光梳输出功率:>500 mW

三次谐波(THG)选配模块

  • 中心波长:350±3 nm
    单路光梳输出功率:>80 mW

超连续谱发生(SCG)选配模块

  • 集成光纤规格:具体光纤型号请咨询

输出接口

  • 光学输出:两路空间分离脉冲序列
    互相关信号:输出与重复频率差同步的触发信号

控制系统

  • 重复频率差调节:数字控制(如需模拟控制可定制)
    重复频率:固定不可调
    功率分配:仅配备 SHG 模块机型支持基频光与倍频光功率分配

设备尺寸

  • 激光主机(长 × 宽 × 高):540 × 321 × 179 mm
    光束输出高度:设备宽度侧 75 mm
    K2-Link 控制机箱(长 × 宽 × 高):395 × 436 × 88.05 mm(标准 19 英寸 2U 机架式)
    连接线缆:控制机箱与激光主机线缆长度 3 米

使用环境要求

  • 工作温度:15–30 ℃(水冷 / 风冷双版本,混合散热结构)
    相对湿度:20%–70%,无凝露
    供电规格:
    100–120 伏交流电,3 安培,50/60 赫兹;
    200–240 伏交流电,1.5 安培,50/60 赫兹
    整机功耗:<150 W

应用关联产品SESAMMirrorsAeroDiode探测器其它类型探测器


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IEEE 2026

 

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https://link.springer.com/article/10.1186/s43074-026-00250-6

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NIR/VIS Dual-Comb Spectroscopy Comparing High and Low Repetition Rate Regimes

https://onlinelibrary.wiley.com/doi/10.1002/lpor.202502713

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Closed-loop high-precision two-photon lithography based on a multiplexed single-cavity dual-comb laser

https://www.nature.com/articles/s41467-026-73972-7

Nature Communications 2025

 

Swept dual-comb spectroscopy via common-mode cavity tuning and stabilization

https://opg.optica.org/ol/fulltext.cfm?uri=ol-50-22-6995

OPTICA 2025

 

3D in-situ profiling in a laser micromachining station using dual-comb LiDAR

https://opg.optica.org/optcon/fulltext.cfm?uri=optcon-4-9-2220

OPTICA 2025

 

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OPTICA 2025

 

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OPTICA 2025

 

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OPTICA 2025

 

Broadband hyperspectral LiDAR with a free-running gigahertz dual-comb supercontinuum

https://opg.optica.org/ol/fulltext.cfm?uri=ol-50-4-1289

OPTICA 2025

 

Ultra-low noise spectral broadening of two combs in a single ANDi fiber

https://pubs.aip.org/aip/app/article/10/3/036119/3340173/Ultra-low-noise-spectral-broadening-of-two-combs

APL PHOTONICS 2025

 

Long-Range and Dead-Zone-Free Dual-Comb Ranging for the Interferometric Tracking of Moving Targets

https://pubs.acs.org/apchd5/article/12/4/1829/3813831/Long-Range-and-Dead-Zone-Free-Dual-Comb-Ranging

ACS PHOTONICS 2025

 

Study of Time-Resolved Dynamics in Turbid Medium Using a Single-Cavity Dual-Comb Laser

https://pubs.acs.org/apchd5/article/11/10/3972/337099/Study-of-Time-Resolved-Dynamics-in-Turbid-Medium

ACS PHOTONICS 2025

 

High-sensitivity dual-comb and cross-comb spectroscopy across the infrared using a widely tunable and free-running optical parametric oscillator

https://www.nature.com/articles/s41467-024-51392-9

Nature Communications 2024

 

THz-TDS with gigahertz Yb-based dual-comb lasers: noise analysis and mitigation strategies

https://opg.optica.org/ao/fulltext.cfm?uri=ao-63-15-4144

OPTICA 2024

 

Scan-less 3D microscopy based on spatiotemporal encoding on a single-cavity dual-comb laser

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OPTICA 2024

 

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OPTICA 2024

 

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OPTICA 2023

 

Rapid-Scan Nonlinear Time-Resolved Spectroscopy over Arbitrary Delay Intervals

https://spj.science.org/doi/10.34133/ultrafastscience.0027

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OPTICA 2023

 

Efficient pump-probe sampling with a single-cavity dual-comb laser: Application in ultrafast photoacoustics

https://www.sciencedirect.com/science/article/pii/S2213597922001045?via%3Dihub

Photoacoustics 2023

 

Free-running Yb:KYW dual-comb oscillator in a MOPA architecture

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OPTICA 2023

 

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OPTICA 2023

 

Dynamic and precise long-distance ranging using a free-running dual-comb laser

https://opg.optica.org/oe/fulltext.cfm?uri=oe-30-21-37245

OPTICA 2022

 

Absolute SESAM characterization via polarization-resolved non-collinear equivalent time sampling

https://link.springer.com/article/10.1007/s00340-022-07751-9

Applied Physics B 2022

 

Timing jitter characterization of free-running dual-comb laser with sub-attosecond resolution using optical heterodyne detection

https://opg.optica.org/oe/fulltext.cfm?uri=oe-30-4-5075

OPTICA 2022

 

Dual-comb optical parametric oscillator in the mid-infrared based on a single free-running cavity

https://opg.optica.org/oe/fulltext.cfm?uri=oe-30-11-19904

OPTICA 2022

 

Spatially multiplexed single-cavity dual-comb laser

https://opg.optica.org/optica/fulltext.cfm?uri=optica-9-7-713

OPTICA 2022

Picosecond ultrasonics with a free-running dual-comb laser

https://opg.optica.org/oe/fulltext.cfm?uri=oe-29-22-35735

OPTICA 2021

 

Dual-comb ranging with frequency combs from single cavity free-running laser oscillators

https://opg.optica.org/oe/fulltext.cfm?uri=oe-29-16-24910

OPTICA 2021

 

Femtosecond dual-comb Yb:CaF2 laser from a single free-running polarization-multiplexed cavity for optical sampling applications

https://opg.optica.org/oe/fulltext.cfm?uri=oe-28-20-30275

OPTICA 2020

 

An unstabilized femtosecond semiconductor laser for dual-comb spectroscopy of acetylene

https://opg.optica.org/oe/fulltext.cfm?uri=oe-27-3-3190

OPTICA 2019

 

Dual-comb spectroscopy of water vapor with a free-running semiconductor disk laser

https://www.science.org/doi/10.1126/science.aam7424

Science 2017

 

Dual-comb modelocked lasers: semiconductor saturable absorber mirror decouples noise stabilization

https://opg.optica.org/oe/fulltext.cfm?uri=oe-24-3-1889

OPTICA 2016

 

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OPTICA 2015