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Portable Benchtop Raman Spectrometer

    • Goptica's RMT series portable Raman spectrometer is a professional Raman spectroscopy equipment designed for applications such as food and pharmaceuticals, industry, and scientific research. It has the characteristics of easy portability, matching application scenarios, easy operation, and excellent performance. This series is divided into food and drug RMT SY type, industrial RMT GY type, and scientific research RMT KY type. Among them, the industrial (RMT GY) and scientific research (RMT KY) versions have external fiber optic probes for more flexible use.


    Raman applications click here


    • 格物便携拉曼SY.png
      格物便携拉曼GY.png
      格物便携拉曼KY.png
      RMT SYRMT GYRMT KY



    Technical advantages



    Integrated spatial optical path
    ☆Powerful software features

    The RMT series portable Raman spectrometer adopts an integrated optical path design with full free space coupling, without fiber loss and spectral instability caused by free fiber vibration. Its spectral sensitivity is about 2-5 times that of traditional fiber optic paths, indicating a significantly higher signal-to-noise ratio in the spectrum. The RMT GY is equipped with a HiNA high-sensitivity spectrometer that can detect concentration changes up to 1%.


    The PC software provided by RMT KY, RMT GY, and spectrometer: FLAVOR is a powerful software that not only has basic spectral acquisition control functions, but also features wavelet smoothing, automatic calculation of CV, and other characteristic functions. The RMT SY has a built-in probe, built-in testing position, built-in screen and operating software, built-in database and matching algorithm, and supports wireless recording upload and printing of test reports.


    High stability
    Simple to use

    Built in self calibration function, one-time calibration with lifetime maintenance free 

    Temperature drift within ± 2cm-1 at 0~40 ℃ 

    7 * 24 continuous operation, spectral frequency shift less than 2cm-1/month



    No need for configuration,preheating, plug and play 

    Individual 5V DC power supply or optional battery configuration




    Software function

    Device connection management, reconnecting or refreshing devices 

    When the spectrum saturates, the software automatically adjusts the integration time and records the actual integration time and laser power 

    Wavelet smoothing 

    Automatic peak searching 

    Model library management: creating, deleting, and modifying 

    Model matching 

    Laser can be independently controlled or associated with equipment


    Continuous spectral acquisition mode, or Raman acquisition mode 

    Automatic calibration function 

    Performance monitoring/evaluation 

    Overlay/delete spectra, select spectra first 

    Add multiple spectral collection pages 

    Wave number/wavelength switching 

    Manually specify the X-axis translation value 

    Manually turn on/off the laser cooling for easy control of heat and energy savings 

    RMT SY’s software includes a database and matching algorithm 

    RMT SY’s software supports wireless data upload and printing test reports



    • Product specifications and manuals

      Product brochure: image.png


    • 应用领域

      食物药物

      工业

      科研

      型号

      RMT785 SY

      RMT785 GY

      RMT785 KY

      RMT532 KY

      RMT1064 KY

      波段

      范围

      200~3200cm-1

      200~3000cm-1

      200~3000或

      200~3200cm-1

      200~3000或200~3200cm-1

      200~2500cm-1

      分辨率

      6-8cm-1

      6-8cm-1 

      8cm-1 

      8cm-1 

      10cm-1 

      频移误差

      ≤±2cm-1

      ≤±2cm-1

      ≤±2cm-1

      ≤±2cm-1

      ≤±2cm-1

      温漂

      ≤±2cm-1 @ 0~40℃

      ≤±2cm-1@ 0~40℃

      ≤±2cm-1 @ 0~40℃

      ≤±2cm-1 @ 0~40℃

      ≤±2cm-1 @ 0~40℃

      激光波长

      785nm±0.5nm

      785nm±0.5nm

      785nm±0.5nm

      532nm±0.5nm

      1064nm±0.5nm

      激光线宽

      <0.1nm

      <0.1nm

      <0.1nm

      <0.1nm

      <0.1nm

      激光功率

      0~500mW

      0~500mW

      0~500mW

      0~100mW

      0~500mW

      探头工作距离

      7.5mm

      7.5mm

      7.5mm

      尺寸

      415*336*120mm3

      312*275*151mm3

      484*375*178mm3

      重量

      ~3kg

      ~7.5kg

      ~5kg

      软件

      食药版拉曼软件

      flavor拉曼软件

      flavor拉曼软件

      拉曼探头

      内置

      外置(探头光纤1m)

      外置(探头光纤1m)

      电池

      标配

      /

      选配

      数据接口

      /

      USB2.0,USB-B

      USB2.0,USB-B

      电源接口

      DC2.5

      DC2.1

      DC2.5

      供电

      12V DC

      12V DC

      12V DC



  •        Textiles, as indispensable materials in daily life, play a significant role in various fields such as product quality control, consumer rights protection, and cultural relic identification. With the continuous increase in the variety of textile materials and the emergence of new fiber materials, traditional identification methods are gradually struggling to meet the demands in terms of efficiency and accuracy. This study aims to explore the application value and feasibility of Raman spectroscopy technology in the identification of textile fibers.

     Textile materials are primarily divided into two major categories:

    • Natural fibers: including cotton, wool, silk, etc.

    • Chemical fibers: including synthetic fibers such as polyester and nylon


    Traditional fiber identification methods mainly include:

    MethodPrincipleLimitations
    Microscopic observation methodObserving fiber morphological characteristicsTime-consuming, requires high experience from the operator
    Melting point testing methodTesting Fiber Melting Point CharacteristicsIt belongs to destructive testing, with lower efficiency
    Chemical Dissolution MethodUtilizing the solubility differences of different solventsMay damage samples, operation is complex

    Common problems of the above methods include long detection cycles, high requirements for operation technology, and some methods being destructive detection, etc.


    Basic Principle of Raman Spectroscopy

    Raman spectroscopy is an analytical technique based on the Raman scattering effect. When light interacts with molecules of a substance, some photons undergo inelastic scattering, resulting in energy changes, thereby reflecting molecular vibration information.


    Technical Advantages
    Schematic Diagram of Detection Principle
    • Non-destructive: Samples remain intact after testing

    • Fast and Efficient: The detection process is usually completed within minutes

    • High specificity: Different materials have unique spectral fingerprint characteristics

    • No sample pretreatment required: Can directly detect solid samples


    拉曼检测原理示意图.jpg


    Identification of natural and synthetic fibers

         Through Raman spectroscopy detection, natural fibers (such as cotton) and synthetic fibers show significant differences in spectral characteristics. The main differences are reflected in specific Raman shift bands, where different materials have their own unique characteristic peak positions.光谱筛选天然纤维.jpg


    Distinguishing Different Synthetic Fibers

    Various synthetic fibers exhibit characteristic peak distributions in Raman spectra:

    • Polyester fibers show characteristic peaks in specific wavenumber ranges

    • Polyamide fibers show characteristic peaks in another wavenumber range

    • Other synthetic fibers also have their own unique spectral fingerprints


           Chemical fiber materials are substances processed into fiber form through chemical or physical methods using natural or synthetic polymer materials, including nylon, polyester, polypropylene, etc.

           Based on the unique characteristic peaks of different chemical fiber materials in Raman spectra, they can be rapidly and accurately identified. For example, polypropylene has characteristic peaks at 806 cm -1 and 838 cm -1 ; nylon shows distinct characteristic peaks at 1123 cm -1 ; while polyester has characteristic peaks at 853 cm -1 .



    Discriminate polypropylene based on the characteristic peaks at 806 cm -1 and 838 cm-1
    Discriminate nylon based on the 1123 cm -1 characteristic peak
    Discriminate polyester based on the 853 cm -1 characteristic peak


    Analysis of component materials in blended fabrics

           For blended fabrics composed of multiple fibers, Raman spectroscopy technology can effectively identify all fiber types contained within, and can roughly assess the proportion of each component material through spectral intensity analysis.

           Based on the built-in mixture identification algorithm of the BLADE-785B-PRO Textile Inspection Special Edition, common blended materials such as clothing can be quickly identified, and their component types and proportions can be accurately determined . Specifically, the algorithm analyzes the characteristics of various fibers in the clothing, combined with the high-precision data of Raman spectroscopy technology, to conduct a comprehensive component identification of textiles.


    Technical Applicability

    Raman spectroscopy technology demonstrates the following application advantages in textile fiber identification:

    • Suitable for precise detection in laboratory environments

    • Suitable for non-destructive detection scenarios such as valuable cultural relics and artworks

    • Can be used as an auxiliary detection method for production quality control


    Future consideration could be given to combining Raman spectroscopy with other analytical techniques (such as infrared spectroscopy, X-ray diffraction, etc.) to improve the accuracy of identifying complex textile materials.


    Summary: Raman spectroscopy technology has significant application value in the identification of textile fibers. This technology can:

    1. Quickly and accurately identify fiber material types

    2. Distinguish between natural and synthetic fibers

    3. Multi-component analysis of blended fabrics

    With the widespread use of detection equipment and the improvement of data analysis methods, this technology is expected to play a more important role in fields such as textile quality control, consumer rights protection, and cultural relic preservation.


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