- Photomultiplier
Photomultiplier tubes (photomultipliers or PMTs for short), members of the class of
vacuum tube s, and more specificallyphototube s, are extremely sensitive detectors of light in theultraviolet , visible, andnear-infrared ranges of theelectromagnetic spectrum . These detectors multiply the signal produced by incident light by as much as 100 million times (i.e., 160 dB), enabling (for example) singlephotons to be detected individually when the incidentflux of light is very low.The combination of high
gain , low noise, high frequency response, and large area of collection has earned photomultipliers an essential place in nuclear andparticle physics ,astronomy , medicaldiagnostics includingblood tests ,medical imaging , motion picture film scanning (telecine ), and high-end image scanners known asdrum scanner s.Semiconductor device s, particularlyavalanche photodiode s, are alternatives to photomultipliers; however, photomultipliers are uniquely well-suited for applications requiring low-noise, high-sensitivity detection of light that is imperfectly collimated. While photomultipliers are extraordinarily sensitive and moderately efficient, research is still underway to create a photon-counting light detection device that is much more than 99% efficient. Such a detector is of interest for applications related toquantum information andquantum cryptography . Elements of photomultiplier technology, when integrated differently, are the basis ofnight vision device s.History
The photomultiplier was invented in 1936, and is rooted in the science of the
photoelectric effect andsecondary emission (i.e., the ability ofelectrons in a vacuum tube to cause the emission of additional electrons by striking anelectrode ).The photoelectric effect is perhaps most associated with
Albert Einstein , who educed the fundamental principle ofquantization (i.e., the basis ofquantum mechanics ) for which he received the 1921Nobel Prize . However, the phenomenon had been known earlier without understanding the quantum mechanical proportionality between optical frequency and photon energy.The phenomenon of
secondary emission was first limited to purely electronic inventions (i.e., those lackingphotosensitivity ). In 1902, Austin and Starke reported that the metal surfaces impacted by electron beams emitted a larger number of electrons than were incident. [H. Bruining, Physics and applications of secondary electron emission, (McGraw-Hill Book Co., Inc.; 1954).] But the use of secondary emission as a means for signal amplification was not proposed until afterWorld War I , byJoseph Slepian in a 1919 Westinghouse patent. [J. Slepian, Westinghouse Electric, "Hot Cathode Tube," U.S. Patent 1, 450, 265, April 3, 1923 (Filed 1919)]Sixteen years later, the phenomenon of
photoemission (i.e., the photoelectric effect) was combined withsecondary emission to create the photomultiplier. In 1935 H.E. Iams and B. Salzberg ofRCA reported on a single-stage photomultiplier. [H. E. Iams and B. Salzberg, "The secondary emission phototube," Proc. IRE, Vol. 23, pp. 55-64 (1935).] The device consisted of a semi-cylindricalphotocathode , a secondary emitter mounted on the axis, and a collector grid surrounding the secondary emitter. The tube had a gain of about eight.In 1936, Vladimir Zworykin, G.A. Morton, and L. Malter of RCA first reported a tube that amplified the current of photoemitted electrons in multiple stages—a device that was later called a "photomultiplier". [V.K. Zworykin, G.A. Morton, and L.Malter, "The secondary-emission multiplier-a new electronic device," Proc. IRE, Vol. 24, pp. 351-375 (1936).] The first experimental photomultipliers used a Ag-O-Cs (silver-oxide-cesium) photocathode having a typical peak quantum efficiency of 0.4% at 800 nm.
Also in 1936, a much improved photocathode, Cs3Sb (
cesium -antimony ), was reported by P. Gorlich. [P. Gorlich, "Uber zusammengesetzte, durchsichtige Photokathoden," 2. Physik, Vol. 101, p. 335 (1936).] The cesium-antimony photocathode had a dramatically improved quantum efficiency of 12% at 400 nm, and was used in the first commercially successful photomultipliers manufactured by RCA (i.e., the 931-type) both as a photocathode and as a secondary-emitting material for thedynode s. Different photocathodes provided differing spectral responses.pectral response of photocathodes
In the early 1940s the
JEDEC (Joint Electron Devices Engineering Council), an industry committee on photosensitive devices, developed a system of designating spectral responses. ["Relative spectral response data forphotosensitive devices ("S" curves)," JEDEC Publication No. 50, Electronic Industries Association, Engineering Department, 2001 I Street, N.W., Washington, D.C. 20006 (1964)] The philosophy included the idea that the product's user need only be concerned about the response of the device rather than how the device may be fabricated. The various types of photocathode devices were assigned "S-numbers" (spectral numbers) ranging from S-1 through S-40, which are still in use today. For example, S-11 uses the cesium-antimony photocathode, and S-25 uses a so-called "multialkali" photocathode (Na-K-Sb-Cs, orsodium -potassium -antimony -cesium ) that provides extended response in the red portion of the visible light spectrum. No suitable photoemissive surfaces have yet been reported to detect wavelengths longer than approximately one micrometer.Role of RCA
For decades, RCA was responsible for performing the most important work in developing and refining photomultipliers. RCA was also largely responsible for the commercialization of photomultiplers. The company compiled and published an authoritative and very-widely used "Photomultiplier Handbook". RCA made printed copies available for free upon request. The handbook, which continues to be made available online at no cost by the successors to RCA, is considered to be an essential reference.
Following a corporate break-up in the late 1980s involving the acquisition of RCA by
General Electric and disposition of the divisions of RCA to numerous third-parties,RCA 's photomultiplier business became an independent company.Lancaster, Pennsylvania facility
The
Lancaster, Pennsylvania facility was opened by theU.S. Navy in 1942 and operated by RCA for the manufacture of radio andmicrowave tube s. Following the Allied victory inWorld War II , the naval facility was acquired by RCA. "RCA Lancaster", as it became known, was the base for development and production of commercialtelevision products. In subsequent years other products were added, such ascathode ray tubes , photomultiplier tubes, motion-sensing light control switches, andclosed-circuit television systems.Transition to Burle Industries
Burle Industries, as the successor to the RCA Corporation, has carried the RCA photomultiplier business forward since 1986, and is based in the Lancaster, Pennsylvania facility. The 1986 acquisition of RCA by
General Electric resulted in thedivestiture of the RCA Lancaster New Products Division. Hence, 45 years after being founded by the U.S. Navy, its management team, led by Erich Burlefinger, purchased the division and in 1987 founded Burle Industries.The RCA "Photomultipler Handbook", along with another famous RCA reference work, is available on the Burle Industries website. [ [http://www.burle.com/cgi-bin/byteserver.pl/pdf/Photo.pdf PhotoMultiplier] Hand-Book]
In 2005, after eighteen years as an independent enterprise, Burle Industries and a key subsidiary were acquired by Photonis, a
European holding company [http://www.photonis.com Photonis Group] . Following the acquisition, Photonis was comprised of PhotonisNetherlands , PhotonisFrance , PhotonisUSA , and Burle Industries. Photonis USA operates the former Galileo Corporation Scientific Detector Products Group (Sturbridge, Massachusetts ), which had been purchased by Burle Industries in 1999. The Group is known formicrochannel plate detector (MCP) electron multipliers—an integrated micro-vacuum tube version of photomultipliers. MCPs are used for imaging and scientific applications, includingnight vision device s.Other companies
The
Japan -based companyHamamatsu Photonics (also known as Hamamatsu) has emerged since the 1960s as a leader in the photomultiplier industry. Hamamatsu, in the tradition of RCA, has published its own handbook, which is available without cost on the company's website.tructure and operating principles
Photomultipliers are constructed from a glass
vacuum tube , which houses aphotocathode , severaldynode s, and ananode . Incidentphotons strike thephotocathode material, which is present as a thin deposit on the entry window of the device, withelectron s being produced as a consequence of thephotoelectric effect . These electrons are directed by the focusingelectrode toward theelectron multiplier , where electrons are multiplied by the process ofsecondary emission . The electron multiplier consists of a number of electrodes, called "dynodes". Each dynode is held at a more positive voltage than the previous one. The electrons leave the photocathode, having the energy of the incoming photon (minus thework function of the photocathode). As the electrons move toward the first dynode, they are accelerated by the electric field and arrive with much greater energy. Upon striking the first dynode, more low energy electrons are emitted, and these electrons in turn are accelerated toward the second dynode. The geometry of the dynode chain is such that a cascade occurs with an ever-increasing number of electrons being produced at each stage. Finally, the electrons reach the anode, where the accumulation of charge results in a sharp current pulse indicating the arrival of a photon at the photocathode.Usage considerations
Photomultiplier tubes typically utilize 1000 to 2000
volts to accelerate electrons within the chain of dynodes. The most negative voltage is connected to the cathode, and the most positive voltage is connected to the anode. Negative high-voltage supplies (with the positive terminal grounded) are preferred, because this configuration enables thephotocurrent to be measured at the low voltage side of the circuit for amplification by subsequent electronic circuits operating at low voltage. Voltages are distributed to the dynodes by a resistivevoltage divider , although variations such as active designs (withtransistors ordiodes ) are possible. The divider design, which influences frequency response orrise time , can be selected to suit varying applications.While powered (energized), photomultipliers must be shielded from
ambient light to prevent their destruction through overexcitation. If used in a location with strong magnetic fields, which can curve electron paths, photomultipliers are usually shielded by a layer ofmu-metal .Typical applications
* Photomultipliers were the first
electric eye devices, being used to measure interruptions in beams of light.
* Photomultipliers are used in conjunction withscintillator s to detect nuclear andparticle radiation in physics experiments.
* Photomultipliers are used in research laboratories to measure the intensity and spectrum of light-emitting materials such ascompound semiconductor s andquantum dots .
* Photomultipliers are used in numerous medical equipment designs. For example,blood analysis devices used by clinical medical laboratories utilize photomultipliers to determine the relative concentration of various components in vials of blood drawn in doctors' offices, in combination withoptical filter s andincandescent lamps .High sensitivity applications
After fifty years, during which solid-state electronic components have largely displaced the vacuum tube, the photomultiplier remains a unique and important optoelectronic component. Perhaps its most useful quality is that it acts, electronically, as a nearly perfect current source owing to the high voltage utilized in extracting the tiny currents associated with weak light signals. There is no
Johnson noise associated with photomultiplier signal currents even though they are greatly amplified, e.g., by 100 thousand times (i.e., 100 dB) or more.Photomultiplier-amplified photocurrents can be electronically amplified by a high-input-impedance electronic amplifier (in the signal path, subsequent to the photomultiplier), thus producing appreciable voltages even for nearly infinitesimally small photon fluxes. Photomultipliers offer the best possible opportunity to exceed the Johnson noise for many configurations. The aforementioned refers to measurement of light fluxes that, while small, nonetheless amount to a continuous stream of multiple photons.
For smaller photon fluxes, the photomultiplier can be operated in photon counting or Geiger mode ("see also: single-photon avalanche diode"). In Geiger mode the photomultiplier gain is set so high (using high voltage) that a single photo-electron resulting from a single photon incident on the primary surface generates a very large current at the output circuit. However, owing to the avalanche of current, a reset of the photomultiplier is required. In either case, the photomultiplier can detect individual photons. The drawback, however, is that not every photon incident on the primary surface is counted either because of less-than-perfect efficiency of the photomultiplier, or because a second photon can arrive at the photomultiplier during the "dead time" associated with a first photon and never be noticed.
Nonetheless, the ability to detect single photons striking the primary photosensitive surface itself reveals the quantization principle that Einstein put forth. Photon-counting (as it is called) reveals that light, not only being a wave, consists of discrete particles (i.e., photons).
ee also
*
Geiger counter
*Lucas cell
*Microchannel plate
*Phototube
*Scintillation counter References
Bibliography
* Engstrom, Ralph W., "Photomultiplier Handbook", RCA (1980).
* "Photomultiplier Tubes: Basics and Applications (Second Edition)", Hamamatsu Photonics, Hamamatsu City, Japan, (1999).
* Flyckt, S.O. and Marmonier, C., [http://www.photonis.com/products/photomultiplier-tubes/application_book "Photomultiplier Tubes: Principles and Applications"] , Philips Photonics, Brive, France (2002).External links
* [http://microscopy.fsu.edu/primer/flash/photomultiplier/ Molecular Expressions] - Java-based simulation and tutorial on photomultiplier tubes
* [http://www.burle.com/cgi-bin/byteserver.pl/pdf/Photo.pdf Photomultiplier Handbook] (4MB PDF) from Burle Industries, essentially the Engstrom-RCA Handbook reprinted
* [http://www.electrontubes.com/info/papers.html Photomultiplier technical papers] from Electron Tubes Ltd.
* [http://sales.hamamatsu.com/assets/applications/ETD/pmt_handbook_complete.pdf Photomultiplier tubes] basics and applications fromHamamatsu Photonics
* [http://www.vias.org/simulations/simusoft_emultiplier.html Electron Multiplier] - simulation of an electron multiplier tube
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