Inductively Coupled Plasma Emission Spectroscopy (ICP-OES) – ToronICP™ MICS DV (Bidirectional Observation)

Inductively Coupled Plasma Emission Spectroscopy (ICP-OES) – ToronICP™ MICS DV is a newgeneration inductively coupled plasma spectrophotometer developed for fast, precise, and flexible multi-element analysis. The system generates a stable, high-temperature inductively coupled plasma that efficiently excites atoms in liquid samples, causing them to emit element-specific light used for accurate identification and quantification across a wide concentration range.

This advanced inductively coupled plasma emission spectroscopy platform incorporates bidirectional (dual-view) plasma observation, enabling seamless switching between high-sensitivity axial viewing for trace element detection and interference-resistant radial viewing for complex sample matrices. Its compact footprint, intelligent automation, and real-time plasma monitoring enhance operational stability and ease of use, delivering reliable analytical performance for routine laboratory testing, quality control, and advanced research environments.

Inductively Coupled Plasma Emission Spectroscopy – ToronICP™ MICS DV (Bidirectional Observation)

Applications

The Inductively Coupled Plasma Emission Spectroscopy – ToronICP™ MICS DV is widely used in:

  • Environmental protection, including water, soil, and air-related sample analysis
  • Food safety and quality testing, for trace and contaminant element detection
  • Geology and mineral resource analysis, including ores and rare earth elements
  • Metallurgy and non-ferrous metals, for composition control and impurity analysis
  • Chemical industry laboratories, supporting raw material and product testing
  • Petroleum and petrochemical analysis, including fuels, lubricants, and additives
  • Semiconductor and electronic materials testing
  • Agricultural research, including fertilizers and trace nutrient studies
  • Scientific research laboratories, requiring precise multi-element measurement
Inductively Coupled Plasma Emission Spectroscopy – ToronICP™ MICS DV (Bidirectional Observation)
Inductively Coupled Plasma Emission Spectroscopy – ToronICP™ MICS DV (Bidirectional Observation)
Inductively Coupled Plasma Emission Spectroscopy – ToronICP™ MICS DV (Bidirectional Observation)
Inductively Coupled Plasma Emission Spectroscopy – ToronICP™ MICS DV (Bidirectional Observation)
Inductively Coupled Plasma Emission Spectroscopy – ToronICP™ MICS DV (Bidirectional Observation)
Inductively Coupled Plasma Emission Spectroscopy – ToronICP™ MICS DV (Bidirectional Observation)
Inductively Coupled Plasma Emission Spectroscopy – ToronICP™ MICS DV (Bidirectional Observation)
Inductively Coupled Plasma Emission Spectroscopy – ToronICP™ MICS DV (Bidirectional Observation)

Inductively Coupled Plasma Emission Spectroscopy – ToronICP™ MICS DV (Bidirectional Observation) Key Features

  • Inductively Coupled Plasma Emission Spectroscopy (ICP-OES) for accurate multielement analysis
  • Bidirectional plasma observation (axial and radial) to balance sensitivity and interference resistance
  • Full spectrum, direct-reading optical system, enabling simultaneous detection of all elements
  • Real-time plasma flame monitoring, with full-color visualization inside the control software
  • High-precision airflow control system, using mass flow controllers for stable plasma conditions
  • Peristaltic pump sample introduction, supporting adjustable flow rates and online dilution
  • Compact and miniaturized design, optimized for modern laboratory spaces
  • Intelligent software platform, supporting qualitative, quantitative, and trace analysis
  • Low detection limits, suitable for trace and ultra-trace elemental measurements
  • Stable solid-state RF power supply, ensuring consistent plasma performance and long-term reliability
Inductively Coupled Plasma Emission Spectroscopy – ToronICP™ MICS DV (Bidirectional Observation)

Bidirectional plasma observation (axial and radial)

Inductively Coupled Plasma Emission Spectroscopy – ToronICP™ MICS DV (Bidirectional Observation)

Real-time plasma flame monitoring

Inductively Coupled Plasma Emission Spectroscopy – ToronICP™ MICS DV (Bidirectional Observation)

High-precision airflow control system

Inductively Coupled Plasma Emission Spectroscopy – ToronICP™ MICS DV (Bidirectional Observation)

Peristaltic pump sample introduction

Inductively Coupled Plasma Emission Spectroscopy – ToronICP™ MICS DV (Bidirectional Observation) Technical Specifications

ModelToronICP™ MICS DV
Analytical TechniqueInductively Coupled Plasma Emission Spectroscopy (ICP-OES)
Instrument TypeInductively Coupled Plasma Spectrophotometer
Plasma ObservationBidirectional (Axial and Radial viewing)
Optical SystemFull spectrum, direct reading
DetectorScientific-grade CCD detection system
Wavelength CoverageBroad spectral range (full elemental coverage)
Element CapacitySimultaneous multi-element analysis
Detection LimitDown to ppb level
Sample IntroductionPeristaltic pump with adjustable flow
Airflow ControlHigh-precision mass flow controllers
Plasma MonitoringReal-time full-color flame observation
RF Power SupplySolid-state RF generator
Software FunctionsQualitative, quantitative, and trace element analysis
Design ConceptCompact, intelligent, laboratory-grade system
Typical ApplicationsEnvironmental, food, metallurgy, petrochemical, research
Thermostatic Control38°C (±0.1°C)
Supply VoltageAC 220 V (110V is also available)
Focal Length400 mm
Wavelength Range165-950 nm
Power500-1600 W

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