NbTe₄ Crystals

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    NbTe₄ Crystals

    NbTe₄ is a quasi-one-dimensional (1D) transition metal telluride with unique electronic, optical, and thermal properties. Its highly anisotropic structure and high conductivity make it a promising material for quantum materials research, optoelectronics, and energy storage applications. Our NbTe₄ crystals are synthesized using the Chemical Vapor Transport (CVT) method, ensuring high purity, high crystallinity, and reliable performance for cutting-edge research.

    Sample Size Options:
    Crystals larger than 10 mm²
    Crystals larger than 25 mm²

    Material Properties:
    Quasi-1D Layered Structure: Exhibits strong anisotropic properties for advanced research.
    Electronic Behavior: Features high electrical conductivity and semimetallic characteristics.
    Optical Absorption: Strong absorption in the visible-to-infrared range.
    Thermal Stability: Maintains stability under inert storage conditions.

    Crystal Structure:
    Type: Monoclinic quasi-1D structure
    Features: Cleavable into thin ribbons or sheets for nanoscale research.

    Degree of Exfoliation:
    Ease of Use: Readily exfoliates into nanoribbons or thin sheets for advanced device applications.

    Other Characteristics:
    Anisotropic Properties: Exhibits direction-dependent optical and electronic behavior.
    Quantum Transport: Supports studies of exotic quantum phenomena in low-dimensional systems. Energy

    Applications: Suitable for thermoelectric devices and photocatalytic systems.
    Environmental Stability: Stable under controlled conditions, with moderate sensitivity to air and moisture.

    Applications:
    Quantum Materials Research:
    Ideal for studying low-dimensional electronic and quantum transport properties. Optoelectronics:
    Suitable for photodetectors, light-emitting devices, and infrared sensors. Energy

    Applications:
    Promising material for thermoelectric devices and energy conversion technologies.
    2D and 1D Material Studies:
    Excellent for studying nanoribbons and integrating with van der Waals heterostructures. Sensors:
    High sensitivity to environmental changes, making it suitable for advanced sensing applications.

    Option 1

    > 10 mm², > 25 mm²