Electric charge
Electric charge is a quantized property causing electromagnetic force.
Electric charge, denoted by the symbols q or Q, is a fundamental property of matter that makes it feel a force when it's inside an electromagnetic field. This charge comes in two types: positive and negative. Objects with the same type of charge push each other away, while objects with opposite charges pull each other together. If an object has no overall charge, it's called electrically neutral. The standard unit for measuring charge is the coulomb (C), named after the French physicist Charles-Augustin de Coulomb.
In any isolated system, the total charge stays constant over time—the difference between the amount of positive and negative charge never changes. Charge is carried by subatomic particles. In everyday matter, electrons carry negative charge, and protons in atomic nuclei carry positive charge. A piece of matter becomes negatively charged if it has more electrons than protons, positively charged if it has fewer, and neutral if the numbers are equal.
Charge is quantized, meaning it only exists in whole-number multiples of a tiny, indivisible unit called the elementary charge, e, which is about 1.602×10⁻¹⁹ C. This is the smallest charge that can exist freely. Particles called quarks have smaller charges, like ⅓e, but they are always found combined inside particles that have integer multiples of e. In the Standard Model of physics, charge is an absolutely conserved quantum number. A proton has a charge of +e, and an electron has a charge of –e. Today, we define negative charge as the charge on an electron and positive charge as the charge on a proton. Before these particles were discovered, Benjamin Franklin defined positive charge as the charge a glass rod gets when rubbed with silk.
Electric charges create electric fields around them. If a charge is moving, it also creates a magnetic field. The way charges interact with an electromagnetic field—a mix of electric and magnetic fields—produces the electromagnetic force (also called the Lorentz force), one of the four fundamental forces in physics. The study of how charged particles interact through photons is called quantum electrodynamics.
In electrical engineering, charge is often measured in ampere-hours (A·h). In physics and chemistry, it's common to use the elementary charge (e) as a unit. Chemistry also uses the Faraday constant, which is the charge of one mole of elementary charges.
The discrete nature of electric charge was first noticed by Michael Faraday during his electrolysis experiments. Robert Millikan's oil drop experiment later directly confirmed this and measured the elementary charge. Quarks, which have fractional charges of –⅓e or +⅔e, are believed to always occur in combinations that give integer charges; no free-standing quark has ever been observed. The charge of an antiparticle is the same as its corresponding particle's charge but with the opposite sign. Coulomb's law describes the electrostatic force between two particles: it's proportional to the product of their charges and inversely proportional to the square of the distance between them.
The net charge of a macroscopic object is the sum of the charges of all its particles. This charge is usually small because atoms typically have equal numbers of protons and electrons, canceling out to zero net charge. An ion is an atom or group of atoms that has lost electrons (becoming a positively charged cation) or gained electrons (becoming a negatively charged anion). Monatomic ions come from single atoms, while polyatomic ions come from two or more bonded atoms, each having a net positive or negative charge.
When macroscopic objects form, their atoms and ions usually combine into neutral structures, so most objects tend to be overall neutral, though they are rarely perfectly so. Sometimes, ions are rigidly bound inside a material, giving the object a net positive or negative charge. Conductive materials can easily gain or lose electrons and hold a net charge indefinitely. When a non-moving object has a non-zero net charge, this is called static electricity. It's easily created by rubbing two different materials together, like amber with fur or glass with silk. Charge moves from one material to the other, leaving opposite charges of equal magnitude on each. The law of conservation of charge always applies, so the object that loses negative charge ends up with a positive charge of the same amount.
- field
- Physics
- known_for
- Fundamental property of matter causing electromagnetic force; quantization of charge; conservation of charge
- SI_unit
- Coulomb (C)
- carriers
- Electrons (negative) and protons (positive)
Lore & Background
Electric charge is a fundamental property of matter that causes it to experience a force in an electromagnetic field. Early knowledge of charged substance interactions is called classical electrodynamics, still accurate for problems not requiring quantum effects. In an isolated system, total charge stays the same—the amount of positive charge minus negative charge does not change over time. Charge carriers include subatomic particles: in ordinary matter, negative charge is carried by electrons, positive charge by protons in atomic nuclei. If there are more electrons than protons, the matter has negative charge; if fewer, positive charge; if equal, it is neutral.
Reader's Guide
Electric charge is central to understanding electromagnetism, one of the four fundamental interactions in physics. The interaction of electric charges with an electromagnetic field produces the electromagnetic (Lorentz) force. Charge is quantized: it comes in integer multiples of the elementary charge e, though quarks have fractional charges of ±1/3 e or +2/3 e but are only found combined in particles with integer charge. The study of photon-mediated interactions among charged particles is called quantum electrodynamics. The law of conservation of charge always applies, and macroscopic objects tend toward neutrality but can hold net charge via static electricity. The SI unit is the coulomb, and the elementary charge is now a defined constant.
Did You Know?
- Quarks have fractional charges of either −1/3 or +2/3 e, but are only found combined in particles with integer charge.
- Benjamin Franklin defined positive charge as the charge acquired by a glass rod rubbed with silk cloth.
- The SI unit coulomb is named after French physicist Charles-Augustin de Coulomb.
The Dual Nature of Charge and How Matter Becomes Charged
Electric charge exists in two flavors—positive and negative—and their relationship follows a simple yet profound rule: identical signs push apart while opposite signs pull together. This attraction and repulsion is the defining behavior that makes charge detectable in the first place. In everyday matter, the negative side is carried by electrons while the positive side resides in the protons locked inside atomic nuclei. When a chunk of material holds more electrons than protons, it tips into negative territory; with fewer electrons, it leans positive; and when the counts match perfectly, the object sits at zero, what physicists call electrically neutral. Atoms that lose or gain electrons become ions—cations when they shed electrons and turn positive, anions when they absorb extra electrons and turn negative. Rubbing two dissimilar materials, like glass against silk or amber against fur, shuffles electrons from one surface to the other, leaving behind equal and opposite charges. This is the everyday phenomenon we call static electricity. Even a perfectly neutral object can display a lopsided internal distribution of charge, a state called polarization, where bound charge separates from free charge. Throughout all of these processes, the total charge in an isolated system never changes.
Quantization: The Discrete World of Charge
Far from being a smooth, continuous quantity, electric charge arrives in rigid, indivisible packets. Every free-standing particle you can isolate in a lab carries a charge that is a whole-number multiple of this fundamental step. The proton sits at +e; the electron at −e. The idea that charge is discrete did not arrive overnight. Michael Faraday, working through his electrolysis experiments, was the first to suspect that charge came in discrete chunks. Decades later, Robert Millikan's famous oil drop experiment provided the direct, hands-on proof and pinned down the numerical value of e. A wrinkle enters with quarks, subatomic constituents that bear fractional charges of either −1/3 e or +2/3 e. Yet quarks have never been observed roaming free; they always cluster together in combinations whose total charge lands back on an integer multiple of e. In the Standard Model of particle physics, charge is classified as an absolutely conserved quantum number, meaning no known process can create or destroy net charge. This conservation law holds firm in every isolated system, regardless of what transformations occur within it.
From Franklin's Glass Rod to Modern Conventions
Long before anyone had glimpsed an electron or a proton, the labels we still use for positive and negative charge were already in play. Benjamin Franklin defined the positive charge as the one a glass rod acquires when rubbed with silk. That convention endured, and even after the electron and proton were identified, the naming scheme held: the electron bears the negative charge, the proton the positive. Coulomb's law gave the electrostatic interaction its mathematical backbone, asserting that the force between two charged particles is proportional to the product of their charges and inversely proportional to the square of the distance between them. Antiparticles mirror their partner particles in every respect except that their charge carries the opposite sign. At the macroscopic scale, an object's total charge is the sum of every constituent particle's contribution. Because ordinary atoms house equal numbers of protons and electrons, most everyday matter hovers near perfect neutrality. Yet conductive materials can readily shed or absorb electrons and maintain a net charge indefinitely, while insulators can be charged to a significant degree through friction. Macroscopic objects tend toward neutrality but rarely achieve it perfectly.
Fields, Forces, and the Electromagnetic Tapestry
A stationary electric charge generates an electric field that stretches outward into space, and when that charge begins to move, a magnetic field appears as well. The combined electromagnetic field—electric and magnetic components woven together—interacts with other charges to produce what physicists call the Lorentz force. This force is one of the four fundamental interactions that underpin all of physics, placing electromagnetism on equal footing with gravity, the strong nuclear force, and the weak nuclear force. For problems that do not demand quantum-level precision, classical electrodynamics remains fully accurate and continues to describe the behavior of charged substances with remarkable fidelity. When quantum effects enter the picture, the field is taken over by quantum electrodynamics, the theory of photon-mediated interactions among charged particles. Measuring charge requires a unit, and the SI system assigns that role to the coulomb, named after the French physicist Charles-Augustin de Coulomb. In electrical engineering, the ampere-hour is a practical alternative, while physics and chemistry often work directly in units of the elementary charge e. Chemists also rely on the Faraday constant, which represents the total charge carried by one mole of elementary charges, bridging the atomic and macroscopic scales.
Frequently Asked Questions
Who is Electric charge?
Electric charge is a fundamental property of matter that determines how particles respond to electromagnetic fields. It exists in two signs—positive and negative—and is the underlying reason electricity and magnetism behave the way they do.
What are Electric charge's powers and role?
It makes particles push or pull on one another through the electromagnetic force, with identical signs repelling and opposite signs attracting. Charge is also strictly quantized, appearing only in whole multiples of the elementary charge carried by a single electron or proton.
How does Electric charge's story end?
It doesn't, because charge is perfectly conserved: the total amount in any closed system stays constant no matter what reactions take place. This makes it one of the most permanent features of the universe we can measure.
Why is Electric charge important?
Without it, electrons could not bind to nuclei, chemistry would not exist, and nearly every force governing everyday life would disappear. It underpins everything from nerve impulses in your body to the operation of every electronic device you own.
What is Electric charge's official unit?
The SI derived unit is the coulomb (C), named after the French physicist Charles-Augustin de Coulomb. One coulomb corresponds roughly to the combined charge of about 6.24 × 10¹⁸ elementary charges.
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