# Scientific instrument

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{{Short description|Device or tool used for scientific purposes}}
{{broader|Equipment}}
A '''scientific instrument''' is a device or tool used for [scientific](/source/scientific) purposes, including the study of both natural phenomena and theoretical research.<ref name="HackmannReaders13">{{cite book |title=Reader's Guide to the History of Science | first1=Arne |last1=Hessenbruch |publisher=Taylor & Francis |year=2013 |pages=675–77 |isbn=9781134263011 }}</ref>

==History==
Historically, the definition of a scientific instrument has varied, based on usage, laws, and historical time period.<ref name="HackmannReaders13" /><ref name="Warner">{{cite journal | title=What Is a Scientific Instrument, When Did It Become One, and Why? | author=Warner, Deborah Jean | journal=The British Journal for the History of Science | volume=23 | number=1 | date=March 1990 | pages=83–93 | jstor=4026803 | doi=10.1017/S0007087400044460 | s2cid=145517920 }}</ref><ref name="FR71USvsPresb">{{cite journal |title=United States v. Presbyterian Hospital |journal=The Federal Reporter |volume=71 |pages=866–868 |year=1896}}</ref> Before the mid-nineteenth century such tools were referred to as "natural philosophical" or "philosophical" apparatus and instruments, and older tools from antiquity to the [Middle Ages](/source/Middle_Ages) (such as the [astrolabe](/source/astrolabe) and [pendulum clock](/source/pendulum_clock)) defy a more modern definition of "a tool developed to investigate nature qualitatively or quantitatively."<ref name="HackmannReaders13" /><ref name="FR71USvsPresb" /> Scientific instruments were made by [instrument maker](/source/mathematical_practitioner)s living near a center of learning or research, such as a university or research [laboratory](/source/laboratory). Instrument makers designed, constructed, and refined instruments for purposes, but if demand was sufficient, an instrument would go into production as a commercial product.<ref name="TurnerEarly87">{{cite book |title=Early Scientific Instruments: Europe, 1400-1800 |author=Turner, A.J. |publisher=Phillip Wilson Publishers |year=1987 |bibcode=1987esie.book.....T }}</ref><ref name="BediniEarly64">{{cite book |url=http://www.gutenberg.org/ebooks/39141 |title=Early American Scientific Instruments and Their Makers |author=Bedini, S.A. |publisher=Smithsonian Institution |year=1964 |access-date=18 January 2017}}</ref>

In a description of the use of the [eudiometer](/source/eudiometer) by [Jan Ingenhousz](/source/Jan_Ingenhousz) to show [photosynthesis](/source/photosynthesis), a biographer observed, "The history of the use and evolution of this instrument helps to show that science is not just a theoretical endeavor but equally an activity grounded on an instrumental basis, which is a cocktail of instruments and techniques wrapped in a social setting within a community of practitioners. The eudiometer has been shown to be one of the elements in this mix that kept a whole community of researchers together, even while they were at odds about the significance and the proper use of the thing."<ref>Geerdt Magiels (2009) ''From Sunlight to Insight. Jan IngenHousz, the discovery of photosynthesis & science in the light of ecology'', page 231,  VUB Press  {{ISBN|978-90-5487-645-8}}</ref>

By World War II, the demand for improved analyses of wartime products such as medicines, fuels, and weaponized agents pushed instrumentation to new heights.<ref name="MukhopadhyayTheRise08">{{cite journal |title=The Rise of Instruments during World War II |journal=Analytical Chemistry |author=Mukhopadhyay, R. |volume=80 |issue=15 |pages=5684–5691 |year=2008 |doi=10.1021/ac801205u|pmid=18671339 |doi-access=  |bibcode=2008AnaCh..80.5684M }}</ref> Today, changes to instruments used in scientific endeavors—particularly analytical instruments—are occurring rapidly, with interconnections to computers and data management systems becoming increasingly necessary.<ref name="McMahonAnal07">{{cite book |title=Analytical Instrumentation: A Guide to Laboratory, Portable and Miniaturized Instruments |author=McMahon, G. |publisher=John Wiley & Sons |year=2007 |pages=1–6 |isbn=9780470518557 }}</ref><ref name="KhandpurHandbook15">{{cite book |title=Handbook of Analytical Instruments |author=Khandpur, R.S. |publisher=McGraw Hill Education |year=2016 |isbn=9789339221362}}</ref>

==Scope==
Scientific instruments vary greatly in size, shape, purpose, complication and complexity. They include relatively simple [laboratory equipment](/source/laboratory_equipment) like [scales](/source/weighing_scale), [ruler](/source/ruler)s, [chronometer](/source/Chronometer_watch)s, [thermometer](/source/thermometer)s, etc. Other simple tools developed in the late 20th century or early 21st century are the [Foldscope](/source/Foldscope) (an optical microscope), the SCALE(KAS Periodic Table),<ref name=ShadabKAS17>{{cite journal|title=KAS PERIODIC TABLE|journal=International Research Journal of Natural and Applied Sciences|author=Shadab, K.A.|volume=4|issue=7|pages=221–261|year=2017}}</ref> the [MasSpec Pen](/source/MasSpec_Pen) (a pen that detects cancer), the [glucose meter](/source/glucose_meter), etc. However, some scientific instruments can be quite large in size and significant in complexity, like [particle collider](/source/particle_collider)s or [radio-telescope](/source/radio-telescope) antennas. Conversely, [microscale](/source/Micrometre) and [nanoscale](/source/Nanoscopic_scale) technologies are advancing to the point where instrument sizes are shifting towards the tiny, including nanoscale [surgical instrument](/source/surgical_instrument)s, biological [nanobots](/source/Nanorobotics), and [bioelectronics](/source/bioelectronics).<ref name="OsianderMicro16">{{cite book |title=Systems Engineering for Microscale and Nanoscale Technologies |author=Osiander, R. |editor1=Darrin, M.A.G.|editor2=Barth, J.L.|editor2-link=Janet Barth |publisher=CRC Press |pages=137–172 |year=2016 |isbn=9781439837351}}</ref><ref name="JamesNeuron15">{{cite book |author1=James, W.S.|author2=Lemole Jr, G.M. |title=Technological Advances in Surgery, Trauma and Critical Care |editor1=Latifi, R.|editor2=Rhee, P.|editor3=Gruessner, R.W.G. |publisher=Springer |year=2015 |pages=221–230 |isbn=9781493926718}}</ref>

==The digital era==
Instruments are increasingly based upon [integration](/source/system_integration) with [computer](/source/computer)s to improve and simplify control; enhance and extend instrumental functions, conditions, and parameter adjustments; and streamline data sampling, collection, resolution, analysis (both during and post-process), and storage and retrieval. Advanced instruments can be connected as a [local area network](/source/local_area_network) (LAN) directly or via [middleware](/source/middleware) and can be further integrated as part of an [information management](/source/information_management) application such as a [laboratory information management system](/source/laboratory_information_management_system) (LIMS).<ref name="WilkesIntegration94solygtj">{{cite journal |title=Integration of instruments and a laboratory information management system at the information level: An inductively coupled plasma spectrometer |journal=Chemometrics and Intelligent Laboratory Systems |author1=Wilkes, R.|author2=Megargle, R. |volume=26 |issue=1 |pages=47–54 |year=1994 |doi=10.1016/0169-7439(94)90018-3}}</ref><ref name="CarvalhoIntegration13">{{cite journal |title=Integration of Analytical Instruments with Computer Scripting |journal=Journal of Laboratory Automation |author=Carvalho, M.C. |volume=18 |issue=4 |pages=328–33 |year=2013 |doi=10.1177/2211068213476288|pmid=23413273 |doi-access=free }}</ref> Instrument connectivity can be furthered even more using [internet of things](/source/internet_of_things) (IoT) technologies, allowing for example laboratories separated by great distances to connect their instruments to a network that can be monitored from a workstation or mobile device elsewhere.<ref name="PerkelTheInternet17">{{cite journal |title=The Internet of Things comes to the lab |journal=Nature |author=Perkel, J.M. |volume=542 |issue=7639 |pages=125–126 |year=2017 |doi=10.1038/542125a|pmid=28150787 |bibcode=2017Natur.542..125P |doi-access=free }}</ref>

==Examples of scientific instruments==
{{For|lists of astronomical instruments|List of telescope types|List of astronomical interferometers at visible and infrared wavelengths}}
{{columns-list|colwidth=30em|
* [Accelerometer](/source/Accelerometer), physical, [acceleration](/source/acceleration)
* [Ammeter](/source/Ammeter), electrical, amperage, [current](/source/Electric_current)
* [Anemometer](/source/Anemometer), wind speed
* [Caliper](/source/Caliper), distance
* [Calorimeter](/source/Calorimeter), [heat](/source/heat)
* [DNA sequencer](/source/DNA_sequencer), molecular biology
* [Dynamometer](/source/Dynamometer), [torque](/source/torque)/[force](/source/force)
* [Electrometer](/source/Electrometer), [electric charge](/source/electric_charge), [potential difference](/source/potential_difference)
* [Electroscope](/source/Electroscope), electric charge
* [Electrostatic analyzer](/source/Electrostatic_analyzer), [kinetic energy](/source/kinetic_energy) of charged particles
* [Ellipsometer](/source/Ellipsometer), optical refractive indices
* [Eudiometer](/source/Eudiometer), gas volume
* [Gravimeter](/source/Gravimeter), [gravity](/source/gravity)
* [Hydrometer](/source/Hydrometer)
* [Inclinometer](/source/Inclinometer), slope
* [Interferometer](/source/Interferometer), optics, infrared light spectra
* [Magnetic tweezers](/source/Magnetic_tweezers), biomolecular manipulation
* [Magnetograph](/source/Magnetometer), magnetic field
* [Magnetometer](/source/Magnetometer), [magnetic flux](/source/magnetic_flux)
* [Manometer](/source/Manometer), air [pressure](/source/pressure)
* [Mass spectrometer](/source/Mass_spectrometer), compound identification/characterization
* [Micrometer](/source/Micrometer_(device)), distance
* [Microscope](/source/Microscope), optical magnification
* [NMR spectrometer](/source/NMR_spectrometer), chemical compound identification, medical diagnostic imaging
* [Ohmmeter](/source/Ohmmeter), electrical resistance/impedance
* [Optical tweezers](/source/Optical_tweezers), nanoscale manipulation
* [Oscilloscope](/source/Oscilloscope), electric signal voltage, amplitude, wavelength, frequency, waveform shape/pattern
* [Photometer](/source/Photometer), illuminance, irradiance, light absorption, scattering of light, reflection of light, fluorescence, phosphorescence, luminescence
* [Seismometer](/source/Seismometer), acceleration
* [Spectrogram](/source/Spectrogram), sound frequency, wavelength, amplitude
* [Spectrometer](/source/Spectrometer), light frequency, wavelength, amplitude
* [Telescope](/source/Telescope), light magnification (astronomy)
* [Thermometer](/source/Thermometer), temperature measurement
* [Theodolite](/source/Theodolite), angles, surveying
* [Thermocouple](/source/Thermocouple), temperature
* [Voltmeter](/source/Voltmeter), [voltage](/source/voltage)
* [X-ray scattering techniques](/source/X-ray_scattering_techniques), structural characterization at the nano and atomic scale}}

==List of scientific instruments manufacturers==
{{columns-list|colwidth=|
* [454 Life Sciences](/source/454_Life_Sciences), United States of America
* [ADInstruments](/source/ADInstruments), New Zealand
* [Agilent Technologies](/source/Agilent_Technologies), United States of America
* [Anton Paar](/source/Anton_Paar), Austria
* [A. Reyrolle & Company](/source/A._Reyrolle_%26_Company)
* [Beckman Coulter](/source/Beckman_Coulter), United States of America
* [Bruker](/source/Bruker), United States of America
* [Cambridge Scientific Instrument Company](/source/Cambridge_Scientific_Instrument_Company), United Kingdom
* [Elementar](/source/Elementar), Germany
* [First Light Imaging](/source/First_Light_Imaging), France
* [Horiba](/source/Horiba), Japan
* [JEOL](/source/JEOL), Japan
* [LECO Corporation](/source/LECO_Corporation), United States of America
* [Markes International](/source/Markes_International), United Kingdom
* [Malvern Instruments](/source/Malvern_Instruments), United Kingdom
* [McPherson Inc](/source/McPherson_Inc), United States of America
* [Metrohm](/source/Metrohm), Switzerland
* [Mettler Toledo](/source/Mettler_Toledo), Switzerland / United States of America
* [MTS Systems Corporation](/source/MTS_Systems_Corporation), US, mechanical
* [Novacam Technologies](/source/Novacam_Technologies), Canada
* [Oxford Instruments](/source/Oxford_Instruments), United Kingdom
* [Pall Corp.](/source/Pall_Corp.), United States of America
* [PerkinElmer](/source/PerkinElmer), United States of America
* [Polymer Char](/source/Polymer_Char), Spain
* [Shimadzu Corp.](/source/Shimadzu_Corp.), Japan
* [Techtron](/source/Techtron), Melbourne, Australia
* [Thermo Fisher Scientific](/source/Thermo_Fisher_Scientific), United States of America
* [Waters Corporation](/source/Waters_Corporation), United States of America
* [Xenocs](/source/Xenocs), France
}}

==List of scientific instruments designers==
{{See also|List of astronomical instrument makers|Category:Scientific instrument makers|Worshipful Company of Scientific Instrument Makers}}
* [Jones, William](/source/William_Jones_(optician))
* [Kipp, Petrus Jacobus](/source/Petrus_Jacobus_Kipp)
* [Le Bon, Gustave](/source/Gustave_Le_Bon)
* [Roelofs, Arjen](/source/Arjen_Roelofs)
* [Schöner, Johannes](/source/Johannes_Sch%C3%B6ner)
* [Von Reichenbach, Georg Friedrich](/source/Georg_Friedrich_von_Reichenbach)

==History of scientific instruments==
===Museums===
* [Collection of Historical Scientific Instruments (CHSI)](/source/Harvard_Collection_of_Historical_Scientific_Instruments)
* [Boerhaave Museum](/source/Boerhaave_Museum)
* [Chemical Heritage Foundation](/source/Chemical_Heritage_Foundation)
* [Deutsches Museum](/source/Deutsches_Museum)
* [Royal Victoria Gallery for the Encouragement of Practical Science](/source/Royal_Victoria_Gallery_for_the_Encouragement_of_Practical_Science)
* [Whipple Museum of the History of Science](/source/Whipple_Museum_of_the_History_of_Science)

===Historiography===
* [Paul Bunge Prize](/source/Paul_Bunge_Prize)<ref>Charlotte Bigg & Christoph Meinel (eds.), ''[https://en.gdch.de/fileadmin/downloads/GDCh/Stiftungen/Jenemann/Bunge_Prize_Jubilee_Volume_2023.pdf Paul Bunge Prize: History of Scientific Instruments, 1993-2023]'' (Frankfurt/Main: GDCh & DBG, 2023), 96 pp.</ref>

==Types of scientific instruments==
* [Optical instrument](/source/Optical_instrument)
* [Electronic test equipment](/source/Electronic_test_equipment)

==See also==
* [Instrumentation](/source/Instrumentation)
* [Instrumentalism](/source/Instrumentalism), a philosophic theory
* [List of collectibles](/source/List_of_collectibles)
* {{Wiktionary-inline|-tron}}, a suffix to denote a complex scientific instrument, like in [cyclotron](/source/cyclotron), [phytotron](/source/phytotron), [synchrotron](/source/synchrotron), ...

==References==
{{Reflist|30em}}

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Adapted from the Wikipedia article [Scientific instrument](https://en.wikipedia.org/wiki/Scientific_instrument) by Wikipedia contributors ([contributor history](https://en.wikipedia.org/wiki/Scientific_instrument?action=history)). Available under [Creative Commons Attribution-ShareAlike 4.0 International](https://creativecommons.org/licenses/by-sa/4.0/). Changes may have been made.
