# Spin coating

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{{Short description|Industrial procedure}}
[[File:Spinner.jpg|thumb|Laurell Technologies WS-400 spin coater used to apply [photoresist](/source/photoresist) to the surface of a silicon wafer.]]

'''Spin coating''' is a procedure used to deposit uniform [thin film](/source/thin_film)s onto flat [substrate](/source/Substrate_(printing))s. Usually a small amount of coating material in liquid form is applied on the center of the substrate, which is either spinning at low speed or not spinning at all. The substrate is then rotated at speeds up to 10,000 rpm to spread the coating material by [centrifugal force](/source/centrifugal_force). A machine used for spin coating is called a '''spin coater''', or simply '''spinner'''.<ref>{{Kirk-Othmer|doi=10.1002/0471238961.1921182203150805.a01.pub3|title=Coating Processes|year=2011|last1=Cohen|first1=Edward|last2=Lightfoot|first2=E. J.|isbn=978-0471238966|mode=cs1}}</ref>

Rotation is continued while the fluid spins off the edges of the substrate, until the desired thickness of the film is achieved. The applied solvent is usually [volatile](/source/Volatility_(chemistry)), and simultaneously [evaporates](/source/evaporation). The higher the [angular speed](/source/angular_speed) of spinning, the thinner the film. The thickness of the film also depends on the [viscosity](/source/viscosity) and [concentration](/source/concentration) of the solution, and the solvent.<ref>{{cite journal | last=Scriven | first=L. E. | title=Physics and Applications of DIP Coating and Spin Coating | journal=MRS Proceedings | publisher=Cambridge University Press (CUP) | volume=121 | year=1988 | issn=1946-4274 | doi=10.1557/proc-121-717 | page=717}}</ref> Pioneering theoretical analysis of spin coating was undertaken by Emslie et al.,<ref>{{cite journal |last1=Emslie |first1=A. G. |last2=Bonner |first2=F. T. |last3=Peck |first3=L. G. |title=Flow of a viscous liquid on a rotating disk |journal=J. Appl. Phys. |date=1958 |volume=29 |issue=5 |pages=858–862 |doi=10.1063/1.1723300|bibcode=1958JAP....29..858E }}</ref> and has been extended by many subsequent authors (including Wilson et al.,<ref>{{cite journal |last1=Wilson |first1=S. K. |last2=Hunt |first2=R. |last3=Duffy |first3=B. R. |title=The rate of spreading in spin coating |journal=J. Fluid Mech. |date=2000 |volume=413 |issue=1 |pages=65–88 |doi=10.1017/S0022112000008089|bibcode=2000JFM...413...65W |s2cid=14585243 }}</ref> who studied the rate of spreading in spin coating; and Danglad-Flores et al.,<ref>{{cite journal | last1=Danglad-Flores | first1=J. | last2=Eickelmann| first2=S.| last3=Riegler| first3=H. |title=Deposition of polymer films by spin casting: A quantitative analysis | journal=Chem. Eng. Sci. | volume=179 | year=2018 | pages=257–264 | doi=10.1016/j.ces.2018.01.012| doi-access=free | bibcode=2018ChEnS.179..257D | hdl=21.11116/0000-0000-2D6C-6 | hdl-access=free }}</ref> who found a universal description to predict the deposited film thickness).

Spin coating is widely used in [microfabrication](/source/microfabrication) of functional oxide layers on glass or single crystal substrates using [sol-gel](/source/sol-gel) precursors, where it can be used to create uniform thin films with nanoscale thicknesses.<ref>{{cite journal | last1=Hanaor | first1=D.A.H. | last2=Triani | first2=G. | last3=Sorrell | first3=C.C. | title=Morphology and photocatalytic activity of highly oriented mixed phase titanium dioxide thin films | journal=Surface and Coatings Technology | publisher=Elsevier BV | volume=205 | issue=12 | year=2011 | issn=0257-8972 | doi=10.1016/j.surfcoat.2011.01.007 | pages=3658–3664| arxiv=1303.2741 | s2cid=96130259 }}</ref> It is used intensively in [photolithography](/source/photolithography), to deposit layers of [photoresist](/source/photoresist) about 1 [micrometre](/source/micrometre) thick. Photoresist is typically spun at 20 to 80 revolutions per second for 30 to 60 seconds. It is also widely used for the fabrication of planar photonic structures made of polymers.{{Citation needed|date=March 2025}} Spin coating is also sometimes used in the preparation of [alignment films](/source/Alignment_layers) for [LCD displays](/source/LCD_displays).<ref name=":0">{{Cite journal |last1=Hoogboom |first1=Johan |last2=Rasing |first2=Theo |last3=Rowan |first3=Alan E. |last4=Nolte |first4=Roeland J. M. |date=2006-03-24 |title=LCD alignment layers. Controlling nematic domain properties |url=https://pubs.rsc.org/en/content/articlelanding/2006/jm/b510579j |journal=Journal of Materials Chemistry |language=en |volume=16 |issue=14 |pages=1305–1314 |doi=10.1039/B510579J |issn=1364-5501|hdl=2066/35718 |hdl-access=free }}</ref> 

One advantage to spin coating thin films is the uniformity of the film thickness. Owing to self-leveling, thicknesses do not vary more than 1%.{{Citation needed|date=July 2025}} The thickness of films produced in this manner may also affect the optical properties of such materials. This is important for electrochemical testing, specifically when recording absorbance readings from [Ultraviolet-visible Spectroscopy](/source/Ultraviolet%E2%80%93visible_spectroscopy), since thicker films have lower optical transmittance and typically do not allow light to shine through in comparison to thinner films allowing light to go through before the optical density of the film becomes too low. Additionally, films with lower absorbance quality are not as ideal of candidates for processes such as [Cyclic Voltammetry](/source/Cyclic_voltammetry) because the low absorbance hinders electrochemical tuning of cations when in an electrochemical cell. Thinner films in this regard have more desirable optical properties that can be tuned for energy storage technologies because of their spin coated influenced properties.<ref>{{cite web|title=What Is Spin Coating?|publisher=Inseto|date=November 4, 2020|url=https://www.inseto.co.uk/what-is-spin-coating-ikb-075/|access-date=2023-05-24}}</ref> However, spin coating thicker films of [polymers](/source/polymer) and [photoresists](/source/photoresist) can result in relatively large edge beads whose planarization has physical limits.<ref>{{cite journal | url=https://iopscience.iop.org/article/10.1088/1361-6439/ab60be/meta | doi=10.1088/1361-6439/ab60be | title=The limits of edge bead planarization and surface levelling in spin-coated liquid films | year=2020 | last1=Arscott | first1=Steve | journal=Journal of Micromechanics and Microengineering | volume=30 | issue=2 | page=025003 | bibcode=2020JMiMi..30b5003A | s2cid=214580612 | hdl=20.500.12210/44092 | hdl-access=free }}</ref>

== References ==

{{Reflist}}

== Further reading ==
*  S. Middleman and A.K. Hochberg. "Process Engineering Analysis in Semiconductor Device Fabrication". McGraw-Hill, p.&nbsp;313 (1993)
*  {{cite journal | last1=Schubert | first1=Dirk W. | last2=Dunkel | first2=Thomas | title=Spin coating from a molecular point of view: its concentration regimes, influence of molar mass and distribution | journal=Materials Research Innovations | publisher=Informa UK Limited | volume=7 | issue=5 | year=2003 | issn=1432-8917 | doi=10.1007/s10019-003-0270-2 | pages=314–321| bibcode=2003MatRI...7..314S | s2cid=98374776 }}

== External links ==
*  [http://homepages.rpi.edu/home/40/underp3/public_html/Pubs/Underhill_PolyEngSci_1998.pdf Spin Coating of Thin and Ultrathin Polymer Films]
*  [https://www.sciencedirect.com/science/article/pii/S0009250918300125/ Deposition of polymer films by spin casting: A quantitative analysis]

Category:Industrial processes
Category:Semiconductor device fabrication
Category:Thin film deposition

{{Industry-stub}}

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