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液体窒素冷却顕微分光測定用 77 K クライオスタット

  • 温度範囲:77 K - 500 K

  • 短い冷却時間,少ない液体窒素消費量

  • 極めてコンパクトな設計,短いワーキングディスタンス


お問い合わせ

  • 温度範囲:77 K - 500 K
  • 約10分間で77 K まで冷却
  • 少ない寒剤消費量 < 0.5 L/h
  • 小型かつコンパクト – 直径 90 mm,厚さ 24 mm
  • 反射および透過の光学測定に対応
  • 短いワーキングディスタンス:2.2 mm
  • 試料厚さ:8 mmまで可能
  • 液体窒素デュワー装備で注入が容易
  • 試料への4-ピン電気配線により、電気測定が可能
  •  MercuryiTC 温度コントローラが付属
  • 1年間の標準保証

Low cryogen consumption: Brings significant benefits in terms of running cost

Simple: The experimental windows and sample holders can be easily changed

Versatile: A range of window materials are available. Please contact your local sales representative for more information

Software control: Oxford Instruments electronics products are controllable through the software using RS232, USB (serial emulation), TCP/IP or GPIB interfaces. LabVIEW function libraries and virtual instruments are provided for Oxford Instruments electronics products to allow PC-based control and monitoring. These can be integrated into a complete LabVIEW data acquisition system

Temperature range: 77 to 500 K

Temperature stability: ± 0.5 K

Liquid nitrogen consumption rate: 0.5 l/hr (nominal)

Room Temperature to base temperature: < 10 min with pre-cooled transfer siphon

Sample change time: approx. 30 min (cryostat must be warmed up to access the sample space)

Sample position stability: designed to give positional stability of the sample holder of approximately 1 µm

Cryostat weight: 0.4 kg

A typical system comprises of:

  • Cryostat
  • Transfer siphon
  • Gas flow
  • Temperature Controller
  • Accessories and Manuals
  • Software

Micro-FTIR: Study of molecular bonds in crystal lattices

Micro-Raman Scattering and inelastic light scattering: Study of molecular energy levels

Micro-luminescence: Studies of Quantum Dot structures in AS/GaHS

Micro-Photoluminescence / Micro-Photoluminescence: Study of semiconductors

Micro-luminescence: Quantum systems, dots/wires/wells

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