- History of string theory
1943-1958: S-Matrix
String theory is an outgrowth of a research program begun by
Werner Heisenberg in 1943, picked up and advocated by many prominent theorists starting in the late 1950s and throughout the 1960s, which was discarded and marginalized in the 1970s to disappear by the 1980s. It was forgotten because a few of the ideas were deeply mistaken, because some of its mathematical methods were alien, and becausequantum chromodynamics supplanted it as an approach to the strong interactions.The program was called the
S-matrix theory , and it was a radical rethinking of the foundation of physical law. By the 1940s it was clear that theproton and theneutron were not pointlike particles like the electron. Theirmagnetic moment was very different from that of a pointlike spin-1/2 charged particle, and by too much to attribute the difference to a small perturbation. Their interactions were so strong that they scattered like a small sphere, not like a point. Heisenberg proposed that the strongly interacting particles were in fact extended objects, and because there are difficulties of principle with extended relativistic particles, he proposed that the notion of a space-time point broke down at nuclear scales.Without space and time, it is difficult to formulate a physical theory. Heisenberg believed that the solution to this problem is to focus on the observable quantities--- those things that can be measured by experiments. An experiment will only be able to see a microscopic quantity if it can be transferred by a series of events to the classical devices which surround the experimental chamber. The objects which fly to infinity are stable particles, in quantum superpositions of different momentum states.
Heisenberg proposed that even when space and time are unreliable, the notion of momentum state, which is defined far away from the experimental chamber, still works. The physical quantity he proposed as fundamental is the quantum mechanical amplitude for a group of incoming particles to turn into a group of outgoing particles, and he did not admit that there were any steps in between.
The
S-matrix is the quantity which describes how a superposition of incoming particles turn into outgoing ones. Heisenberg proposed to study the S-matrix directly, without any assumptions about space-time structure. But when transitions from the far-past to the far-future occur in one step with no intermediate steps, it is difficult to calculate anything. Inquantum field theory , the intermediate steps are the fluctuations of fields or equivalently the fluctuations of virtual particles. In this proposed theory, there are no local quantities at all.Heisenberg proposed to use
unitarity to determine the S-matrix. In all conceivable situations, the sum of the squares of the amplitudes must be equal to 1. This property can determine the amplitude in a quantum field theory order by order in a perturbation series once the basic interactions are given, and in many quantum field theories the amplitudes grow too fast at high energies to make a unitary S-matrix. But without extra assumptions on the high-energy behavior unitarity is not enough to determine the scattering, and the proposal was ignored for many years.Heisenberg's proposal was reinvigorated in the late 1950s when several theorists recognized that
dispersion relations like those discovered byHendrik Kramers andRalph Kronig allow a notion of causality to be formulated, a notion that events in the future would not influence events in the past, even when the microscopic notion of past and future are not clearly defined. The dispersion relations wereanalytic properties of the S-matrix, and they were more stringent conditions than those which follow from unitarity alone.Prominent advocates of this approach were
Stanley Mandelstam andGeoffrey Chew . Mandelstam had discovered thedouble-dispersion relation s, a new and powerful analytic form, in 1958, and believed that it would be the key to progress in the intractable strong interactions.1958-1968: Regge Theory and Bootstrap Models
At this time, many strongly interacting particles of ever higher spins were discovered, and it became clear that they were not all fundamental. While japanese physicist Sakata proposed that the particles could be understood as bound states of just three of them--- the proton, the neutron and the lambda, Chew believed that none of these particles are fundamental. Sakata's approach was reworked in the 1960's into the
quark model byMurray Gell-Mann andGeorge Zweig by making the charges of the hypothetical constitutents fractional and rejecting the idea that they were observed particles. Chew's approach was then considered more mainstream because it did not introduce fractional charges and because it only focused on the experimentally measurable S-matrix elements, not on hypothetical pointlike constituents.In 1958
Tullio Regge , a young theorist in Italy discovered that bound states in quantum mechanics can be organized into families with different angular momentum calledRegge trajectories . This idea was generalized to relativistic quantum mechanics by Mandelstam,Vladimir Gribov andMarcel Froissart , using a mathematical method discovered decades earlier byArnold Sommerfeld andKenneth Marshall Watson .Geoffrey Chew andSteven Frautschi recognized that themeson s made Regge trajectories which were straight lines, which implied by Regge theory that the scattering of these particles would have very strange behavior--- it should fall off exponentially quickly at large angles. With this realization, theorists hoped to construct a theory of composite particles on Regge trajectories, whose scattering amplitudes had the asymptotic form demanded by Regge theory. Since the interactions fall off fast at large angles, the scattering theory would have to be somewhat holistic: Scattering off a pointlike constituent leads to large angular deviations at high energies.1968-1974: Dual Resonance Model
The first theory of this sort, the
dual resonance model , was constructed byGabriele Veneziano in 1968, who noted that the EulerBeta function could be used to describe 4-particle scattering amplitude data for particles on Regge trajectories. The Veneziano scattering amplitude was quickly generalized to an N-particle amplitude byZiro Koba andHolger Bech Nielsen , and to what are now recognized as closed strings byMiguel Virasoro andJoel A. Shapiro . Dual resonance models for strong interactions were a popular subject of study 1968-1974.1974-1984: Superstring Theory
In
1970 ,Yoichiro Nambu ,Holger Bech Nielsen , andLeonard Susskind presented a physical interpretation of Euler's formula by representing nuclear forces as vibrating, one-dimensional strings. However, this string-based description of the strong force made many predictions that directly contradicted experimental findings. The scientific community lost interest in string theory as a theory of strong interactions in 1974 whenquantum chromodynamics became the main focus of theoretical research.In
1974 John H. Schwarz andJoel Scherk , and independentlyTamiaki Yoneya , studied theboson -like patterns of string vibration and found that their properties exactly matched those of thegraviton , the gravitational force's hypothetical "messenger" particle. Schwarz and Scherk argued that string theory had failed to catch on because physicists had underestimated its scope. This led to the development ofbosonic string theory , which is still the version first taught to many students.String theory is formulated in terms of the
Polyakov action , which describes how strings move through space and time. Like springs, the strings want to contract to minimize their potential energy, but conservation of energy prevents them from disappearing, and instead they oscillate. By applying the ideas ofquantum mechanics to strings it is possible to deduce the different vibrational modes of strings, and that each vibrational state appears to be a different particle. The mass of each particle, and the fashion with which it can interact, are determined by the way the string vibrates — in essence, by the "note" which the string sounds. The scale of notes, each corresponding to a different kind of particle, is termed the "spectrum" of the theory.Early models included both "open" strings, which have two distinct endpoints, and "closed" strings, where the endpoints are joined to make a complete loop. The two types of string behave in slightly different ways, yielding two spectra. Not all modern string theories use both types; some incorporate only the closed variety.
The earliest string model, which incorporated only
bosons , has problems. Most importantly, the theory has a fundamental instability, believed to result in the decay of space-time itself. Additionally, as the name implies, the spectrum of particles contains onlybosons , particles like thephoton which obey particular rules of behavior. While bosons are a critical ingredient of the Universe, they are not its only constituents. Investigating how a string theory may includefermion s in its spectrum led to the inventionsupersymmetry , a mathematical relation between bosons and fermions. String theories which include fermionic vibrations are now known as superstring theories; several different kinds have been described.1984-1989: first superstring revolution
Between
1984 and1986 , physicists realized that string theory could describe all elementary particles and interactions between them, and hundreds of them started to work on string theory as the most promising idea to unify theories of physics. Thisfirst superstring revolution was started by a discovery of anomaly cancellation intype I string theory by Michael Green andJohn H. Schwarz in1984 . The anomaly is cancelled due to theGreen-Schwarz mechanism . Several other ground-breaking discoveries, such as theheterotic string , were made in1985 .1995-2000: second superstring revolution
In the 1990s,
Edward Witten and others found strong evidence that the different superstring theories were different limits of a new 11-dimensional theory calledM-theory . [When Witten named it M-theory, he did not specify what the "M" stood for, presumably because he did not feel he had the right to name a theory which he had not been able to fully describe. The "M" sometimes is said to stand for Mystery, or Magic, or Mother. More serious suggestions include Matrix or Membrane.Sheldon Glashow has noted that the "M" might be an upside down "W", standing for Witten. Others have suggested that the "M" in M-theory should stand for Missing, Monstrous or even Murky. According to Witten himself, as quoted in the [http://www.pbs.org/wgbh/nova/elegant/ PBS documentary] based onBrian Greene 's "The Elegant Universe ", the "M" in M-theory stands for "magic, mystery, or matrix according to taste."] These discoveries sparked thesecond superstring revolution .In the mid 1990s,
Joseph Polchinski discovered that the theory requires the inclusion of higher-dimensional objects, calledD-brane s. These added an additional rich mathematical structure to the theory, and opened many possibilities for constructing realistic cosmological models in the theory.In 1997
Juan Maldacena conjectured a relationship between string theory and agauge theory called "N=4" supersymmetricYang-Mills theory . This conjecture, called theAdS/CFT correspondence has generated a great deal of interest in the field and is now well accepted. It is a concrete realization of theholographic principle , which has far-reaching implications forblack hole s, locality andinformation in physics, as well as the nature of the gravitational interaction.2000s - recent development
Most recently, the discovery of the
string theory landscape , which suggests that string theory has an exponentially large number of inequivalent vacua, has led to much discussion of what string theory might eventually be expected to predict, and howcosmology can be incorporated into the theory.ee also
*cite book | author=
Paul Frampton
title=Dual Resonance Models
publisher=Frontiers in Physics
year=1974 | id=ISBN 0-805-32581-6
*cite journal
last = Shapiro
first = Joel A.
authorlink = Joel A Shapiro
title = Reminiscence on the Birth of String Theory
year = 2007
id = arxiv|id=0711.3448References
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