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Q.Define electrical resistivity.

Tamil Nadu DgeTamil Nadu HSC (DGE) Board 2022Subjective· 2mImportance★★★★★
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Concept understanding — Electrical Resistivity and Conductivity

Definition. A conductor's resistance is R=l/(σA)R=l/(\sigma A), where σ\sigma is its conductivity; the reciprocal of conductivity is defined as the resistivity, ρ=1/σ\rho=1/\sigma, letting resistance be rewritten in the commonly used form

R=ρ lAR = \rho\,\dfrac{l}{A}

Resistance is thus directly proportional to a conductor's length l and inversely proportional to its cross-sectional area A -- setting l=1l=1 m and A=1 m2A=1\ \text{m}^2 shows R=ρR=\rho, so the electrical resistivity of a material is the resistance offered by a sample of that material having unit length and unit cross-sectional area. The SI unit of ρ\rho is the ohm-metre (Ωm\Omega\text{m}).

Sorting materials by resistivity. Because resistivity is a pure material property, independent of any particular sample's shape or size, it is exactly what is used to classify materials into three broad categories: conductors (lowest resistivity, of order 10−8 Ωm10^{-8}\ \Omega\text{m} for metals like silver, copper, aluminium, tungsten and iron), insulators (highest resistivity, spanning roughly 101010^{10} to 1016 Ωm10^{16}\ \Omega\text{m} for materials like glass, hard rubber, NaCl and fused quartz), and semiconductors (an intermediate range, exemplified by germanium at 0.46 Ωm\Omega\text{m} and silicon at 640 Ωm\Omega\text{m} -- both far higher than any metal, yet far lower than any true insulator). …

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