2012•Characterization of MaterialsRequires access

Hall Effect and Conductivity Measurements in Semiconductor Crystals and Thin Films

K. Ellmer

Open publisher page 22 citations

Abstract

Abstract The principle of the Hall effect and its application to the characterization of semiconductors are described. The physical origin of the Hall effect, discovered by Edwin H. Hall in 1879, is the Lorentz force acting on the charge carriers in a solid. The Hall voltage, which is generated perpendicular to the current flow in the sample, is proportional to the carrier mobility in the sample. Its sign depends on the type of the (majority) charge carrier (electrons or holes) and can be used to determine if a semiconductor is n‐ or p‐type. From the measured Hall voltage, the carrier concentrationnof the Hall sample can be determined. In combination with a conductivity (σ) measurement, the Hall mobility μHof the sample can be calculated according to μ = σ/(qn). Though in principle simple, the preparation of the Hall measurement samples and the interpretation of the measurements needs some care and the appropriate theory for the charge carrier transport in semiconductors. The normal Hall effect can be explained by a semiclassical theory, while the quantum Hall effect, discovered by von Klitzing in 1980, is a true quantum effect, which occurs only at very high fields at low temperatures in two‐dimensional electron gases. The so‐called von Klitzing constantRK = h/e2 = 25812.807557(18) Ω, which is extracted from a quantum Hall measurement, can be used for the definition of the international standard for resistance. Today, the (normal) Hall effect finds applications for the characterization of semiconductors and mainly for Hall sensors (produced in numbers of billions/year) for the measurement of magnetic fields, for noncontact (proximity) switches, speed detectors, position, and current sensors.

About this research paper

What this paper is about

Abstract The principle of the Hall effect and its application to the characterization of semiconductors are described. The physical origin of the Hall effect, discovered by Edwin H. Hall in 1879, is the Lorentz force acting on the charge carriers in a solid. The Hall voltage, which is generated perpendicular to the current flow in the sample, is proportional to the carrier mobility in the sample. Its sign depends on the type of the (majority) charge carrier (electrons or holes) and can be used to determine if a semiconductor is n‐ or p‐type. From the measured Hall voltage, the carrier concentrationnof the Hall sample can be determined. In combination with a conductivity (σ) measurement, the Hall mobility μHof the sample can be calculated according to μ = σ/(qn). Though in principle simple, the preparation of the Hall measurement samples and the interpretation of the measurements needs some care and the appropriate theory for the charge carrier transport in semiconductors. The normal Hall effect can be explained by a semiclassical theory, while the quantum Hall effect, discovered by von Klitzing in 1980, is a true quantum effect, which occurs only at very high fields at low temperatures in two‐dimensional electron gases. The so‐called von Klitzing constantRK = h/e2 = 25812.807557(18) Ω, which is extracted from a quantum Hall measurement, can be used for the definition of the international standard for resistance. Today, the (normal) Hall effect finds applications for the characterization of semiconductors and mainly for Hall sensors (produced in numbers of billions/year) for the measurement of magnetic fields, for noncontact (proximity) switches, speed detectors, position, and current sensors.

Why it matters

OpenAlex reports 22 citations for this work. Citation counts describe recorded attention and do not establish research quality.

Key contribution

A contribution statement is not available in the OpenAlex record.

Method / approach

Method details are not available in the OpenAlex metadata.

Main findings

Findings are not separately available in the OpenAlex metadata.

Limitations

Limitations are not available in the OpenAlex metadata.

Applications

Application details are not available in the OpenAlex metadata.

Available abstract

Abstract The principle of the Hall effect and its application to the characterization of semiconductors are described. The physical origin of the Hall effect, discovered by Edwin H. Hall in 1879, is the Lorentz force acting on the charge carriers in a solid. The Hall voltage, which is generated perpendicular to the current flow in the sample, is proportional to the carrier mobility in the sample. Its sign depends on the type of the (majority) charge carrier (electrons or holes) and can be used to determine if a semiconductor is n‐ or p‐type. From the measured Hall voltage, the carrier concentrationnof the Hall sample can be determined. In combination with a conductivity (σ) measurement, the Hall mobility μHof the sample can be calculated according to μ = σ/(qn). Though in principle simple, the preparation of the Hall measurement samples and the interpretation of the measurements needs some care and the appropriate theory for the charge carrier transport in semiconductors. The normal Hall effect can be explained by a semiclassical theory, while the quantum Hall effect, discovered by von Klitzing in 1980, is a true quantum effect, which occurs only at very high fields at low temperatures in two‐dimensional electron gases. The so‐called von Klitzing constantRK = h/e2 = 25812.807557(18) Ω, which is extracted from a quantum Hall measurement, can be used for the definition of the international standard for resistance. Today, the (normal) Hall effect finds applications for the characterization of semiconductors and mainly for Hall sensors (produced in numbers of billions/year) for the measurement of magnetic fields, for noncontact (proximity) switches, speed detectors, position, and current sensors.

Key concepts: Quantum Hall effect, Hall effect, Condensed matter physics, Semiconductor, Thermal Hall effect, Electron, Charge carrier, Electron mobility

Related papers

Back to paper searchBrowse research topicsOriginal source
Hall Effect and Conductivity Measurements in Semiconductor Crystals and Thin Films — Research Paper | ScholarLens