Sodium Chloride Crystal Model Manufacturer,Supplier and Exporter in India

Sodium Chloride Crystal Model

Product Code : SCL-BM-11624

The Sodium Chloride Crystal Model by Scientifc Equipment is an educational chemistry teaching model designed to demonstrate the crystal structure, ionic bonding, lattice arrangement, coordination number, and three-dimensional geometry of sodium chloride. It is ideal for school laboratories, college chemistry labs, STEM classrooms, teacher demonstrations, and student learning activities.

This model helps students visualize how sodium ions and chloride ions are arranged in a regular cubic lattice. It provides a clear and practical way to understand ionic compounds, crystal structure, electrostatic attraction, and the relationship between microscopic arrangement and physical properties.

Product Description

A Sodium Chloride Crystal Model is used to explain the internal structure of common salt at the ionic level. In sodium chloride, sodium ions and chloride ions are arranged alternately in a repeating three-dimensional cubic pattern. Each sodium ion is surrounded by chloride ions, and each chloride ion is surrounded by sodium ions, showing the strong ionic lattice structure.

The Scientifc Equipment Sodium Chloride Crystal Model is useful for teaching ionic bonding, crystal lattice, coordination number, unit cell, solid-state chemistry, and properties of ionic compounds such as hardness, brittleness, high melting point, and solubility. It is a valuable visual aid for chemistry, physics, mineralogy, and STEM education.

Key Features

  • Educational model for demonstrating sodium chloride crystal structure.
  • Shows alternate arrangement of sodium ions and chloride ions.
  • Helps explain ionic bonding and electrostatic attraction.
  • Useful for teaching cubic lattice, unit cell, and coordination number.
  • Supports lessons on solid-state chemistry and ionic compounds.
  • Clear three-dimensional visual aid for classroom demonstrations.
  • Helps students understand structure-property relationships in crystals.
  • Durable educational-grade construction for repeated classroom use.
  • Suitable for schools, colleges, chemistry labs, STEM classrooms, and science exhibitions.

Product Specifications

Product Name

Sodium Chloride Crystal Model

Brand

Scientifc Equipment

Product Type

Educational Chemistry and Crystal Structure Model

Model Representation

Three-Dimensional Sodium Chloride Ionic Crystal Lattice

Compound Represented

Sodium Chloride / NaCl

Bonding Type

Ionic Bonding

Crystal Structure

Cubic Ionic Lattice Arrangement

Application

Chemistry, Ionic Bonding, Crystal Structure, Solid-State Chemistry, Mineralogy, and STEM Demonstrations

Working Principle

Visual Representation of Alternating Sodium and Chloride Ions in a Repeating Ionic Lattice

Possible Components

Ion Balls, Bond or Lattice Connectors, Support Frame, Base Stand, and Model Assembly Parts Depending on Model Design

Educational Use

Chemistry Practical, Crystal Lattice Study, Ionic Bonding Demonstration, STEM Learning

Suitable For

Schools, Colleges, Chemistry Laboratories, Physics Laboratories, STEM Classrooms, Science Projects, and Exhibitions

Learning Topics

Sodium Chloride Structure, Ionic Bonding, Crystal Lattice, Unit Cell, Coordination Number, Solid-State Chemistry, and Ionic Compounds

Operation

Manual Demonstration and Observation-Based Learning

How to Use

  1. Place the Sodium Chloride Crystal Model on a clean, flat, and stable classroom or laboratory table.
  2. Identify the differently colored balls representing sodium ions and chloride ions.
  3. Observe the regular alternate arrangement of ions in the cubic lattice.
  4. Explain how opposite charges attract to form a strong ionic crystal structure.
  5. Use the model to show the repeating unit cell arrangement of sodium chloride.
  6. Discuss the coordination number by showing how each ion is surrounded by oppositely charged ions.
  7. Relate the model to the physical properties of sodium chloride, such as hardness, brittleness, high melting point, and solubility in water.
  8. Compare the sodium chloride model with molecular or covalent crystal models, if available.
  9. Ask students to draw the lattice structure or identify sodium and chloride ions from the model.
  10. After use, clean the model gently and store it safely to avoid damage.

Safety and Handling Instructions

  • Use under teacher or laboratory instructor supervision during student activities.
  • Handle the model carefully to prevent breakage of connectors or small parts.
  • Do not apply excessive force while assembling or disassembling the model.
  • Keep small detachable parts away from very young children.
  • Clean only with a soft, dry cloth.
  • Keep away from heat, moisture, chemicals, and sharp objects.
  • Store the model in a clean, dry, and safe place after use.

Educational Applications

  • Demonstration of sodium chloride crystal lattice structure.
  • Study of ionic bonding and electrostatic attraction.
  • Explanation of cubic unit cell and coordination number.
  • Understanding arrangement of sodium ions and chloride ions.
  • Teaching properties of ionic compounds through structure-property relationships.
  • Useful for solid-state chemistry, mineralogy, material science, and STEM lessons.
  • Suitable for chemistry practicals, classroom demonstrations, science fairs, and laboratory teaching.

Why Choose Scientifc Equipment Sodium Chloride Crystal Model?

The Scientifc Equipment Sodium Chloride Crystal Model is designed to make ionic crystal structure simple, visual, and easy to understand. It helps teachers explain sodium chloride lattice arrangement clearly while students gain hands-on understanding of ionic bonding, unit cells, coordination number, and the physical properties of ionic compounds.

FAQ

  1. What is a Sodium Chloride Crystal Model used for?

A Sodium Chloride Crystal Model is used to demonstrate the three-dimensional ionic lattice structure of sodium chloride and to explain ionic bonding, crystal arrangement, unit cell, and coordination number.

  1. Is this model suitable for school laboratories?

Yes, it is suitable for school chemistry labs, college laboratories, STEM classrooms, science projects, and teacher-led demonstrations.

  1. What does the model show?

The model shows sodium ions and chloride ions arranged alternately in a repeating cubic ionic lattice.

  1. What type of bonding is present in sodium chloride?

Sodium chloride contains ionic bonding, formed by electrostatic attraction between positively charged sodium ions and negatively charged chloride ions.

  1. Why does sodium chloride have a high melting point?

Sodium chloride has a high melting point because strong electrostatic forces hold the oppositely charged ions together in a stable crystal lattice.

  1. Can this model be used for solid-state chemistry lessons?

Yes, the model is useful for teaching solid-state chemistry, ionic crystals, unit cells, lattice structures, coordination number, and structure-property relationships.

  1. How should the Sodium Chloride Crystal Model be stored?

After use, clean the model gently, avoid bending or forcing the connectors, and store it in a clean, dry, and safe place to prevent damage or loss of parts.

SEO Keywords

Sodium Chloride Crystal Model, Scientifc Equipment Sodium Chloride Crystal Model, NaCl crystal model, sodium chloride lattice model, ionic bonding model, chemistry crystal structure model, cubic lattice model, solid state chemistry model, school chemistry lab model, STEM chemistry equipment, educational science equipment.

SEO Meta Title

Sodium Chloride Crystal Model – Scientifc Equipment NaCl Lattice Model

SEO Meta Description

Buy Sodium Chloride Crystal Model by Scientifc Equipment for chemistry labs, STEM classrooms, and science demonstrations. Ideal for teaching NaCl crystal structure, ionic bonding, cubic lattice, unit cell, coordination number, sodium ions, chloride ions, and solid-state chemistry.

Google E-E-A-T Focused Content

This product content is prepared to support teachers, laboratory suppliers, educational institutions, STEM coordinators, students, chemistry learners, and science buyers with clear product information, practical specifications, usage guidance, safety instructions, and helpful FAQs. The content focuses on accurate ionic crystal structure concepts, real classroom applications, safe model handling, and trustworthy educational value to improve product clarity, search visibility, and user confidence.

   
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