Search for the Higgs boson explained
The search for the Higgs boson was a 40-year effort by physicists to prove the existence or non-existence of the Higgs boson, first theorised in the 1960s. The Higgs boson was the last unobserved fundamental particle in the Standard Model of particle physics, and its discovery was described as being the "ultimate verification" of the Standard Model.[1] In March 2013, the Higgs boson was officially confirmed to exist.[2]
This confirmed answer proved the existence of the hypothetical Higgs field—a field of immense significance that is hypothesised as the source of electroweak symmetry breaking and the means by which elementary particles acquire mass. Symmetry breaking is considered proven but confirming exactly how this occurs in nature is a major unanswered question in physics. Proof of the Higgs field (by observing the associated particle) validates the final unconfirmed part of the Standard Model as essentially correct, avoiding the need for alternative sources for the Higgs mechanism. Evidence of its properties is likely to greatly affect human understanding of the universe and open up "new" physics beyond current theories.[3]
Despite their importance, the search and the proof were extremely difficult and took decades, because direct production, detection and verification of the Higgs boson on the scale needed to confirm the discovery and learn its properties required a very large experimental project and huge computing resources. For this reason, most experiments until around 2011 aimed to exclude ranges of masses that the Higgs could not have. Ultimately the search led to the construction of the Large Hadron Collider (LHC) in Geneva, Switzerland, the largest particle accelerator in the world, designed especially for this and other high-energy tests of the Standard Model.
Background
The Higgs boson
See main article: Higgs boson.
The Higgs boson, sometimes called the Higgs particle,[4] [5] is an elementary particle in the Standard Model of particle physics produced by the quantum excitation of the Higgs field,[6] [7] one of the fields in particle physics theory. In the Standard Model, the Higgs particle is a massive scalar boson with zero spin, even (positive) parity, no electric charge, and no colour charge, that couples to (interacts with) mass. It is also very unstable, decaying into other particles almost immediately.
Experimental requirements
Like other massive particles (e.g. the top quark and W and Z bosons), Higgs bosons decay to other particles almost immediately, long before they can be observed directly. However, the Standard Model precisely predicts the possible modes of decay and their probabilities. This allows the creation and decay of a Higgs boson to be shown by careful examination of the decay products of collisions.
Therefore, although approaches to proving the Higgs were studied in early research from the 1960s, when the particle was proposed, large-scale experimental searches only commenced in the 1980s, with the opening of particle accelerators sufficiently powerful to provide evidence related to the Higgs boson.
Since the Higgs boson, if it existed, could have any mass in a very wide range, a number of very advanced facilities were eventually required for the search. These included very powerful particle accelerator and detectors (in order to create Higgs bosons and detect their decay, if possible), and processing and analysis of vast amounts of data, requiring very large worldwide computing facilities. For example, over 300 trillion (3 x 1014) proton-proton collisions at the LHC were analysed in confirming the July 2012 particle's discovery, requiring construction of the so-called LHC Computing Grid, the world's largest computing grid (as of 2012) comprising over 170 computing facilities in 36 countries.[8] [9] [10] Experimental techniques included examination of a wide range of possible masses (often quoted in GeV) in order to gradually narrow down the search area and rule out possible masses where the Higgs was unlikely, statistical analysis, and operation of multiple experiments and teams in order to see if the results from all were in agreement.
Experimental search and discovery of unknown boson
Early limits
During the early 1970s there were only few constraints on the existence of the Higgs boson. The limits that did exist came from the absence of the observation of Higgs related effects in nuclear physics, neutron stars, and neutron scattering experiments. This resulted in the conclusion that the Higgs—if it existed—was heavier than .[1]
Early collider phenomenology
In the mid-1970s, the first studies exploring how the Higgs boson may show itself in particle collision experiments were published.[11] However, the prospect of actually finding the particle were not very good; the authors of one of the first articles on Higgs phenomenology warned:One of the problems was that at the time there was almost no clue to the mass of the Higgs boson. Theoretical considerations left open a very wide range somewhere between [12] and [13] with no real indication where to look.[1]
Large Electron–Positron Collider
In the early planning studies for the Large Electron–Positron Collider (LEP) at CERN, the Higgs boson played no role. In fact, it does not appear to be mentioned in any of the reports until 1979.[14] The first detailed study examining the possibilities of discovering the Higgs boson at LEP appeared in 1986.[15] Thereafter the search for the Higgs boson became firmly established within the LEP program.[1]
As its name implies, the Large Electron–Positron Collider collided electrons with positrons. The three most important ways in which such a collision could lead to the production of a Higgs boson were:[1]
- The electron and the positron together produce a Z boson which in turn decay to a Higgs boson and a pair of fermions.
- The electron and the positron together produce a Z boson which in turn radiates away a Higgs boson. (Higgs strahlung)
- The electron and the positron exchange a W or Z boson which along the way emits a Higgs boson.
The fact that no decays of the Z boson to the Higgs were observed at LEP immediately implies that the Higgs boson, if it existed, must be heavier than the Z boson (~). Subsequently, with each successive energy upgrade of the LEP, hope re-emerged that discovery of the Higgs was just around the corner.[1] Just prior to the planned shut down of LEP in 2000, few events that resemble a Higgs boson with a mass of ~ were observed. This led to extension of the final LEP run by a few months.[16] But in the end the data was inconclusive and insufficient to justify another run after the winter break and the difficult decision was made to shut down and dismantle LEP to make room for the new Large Hadron Collider in November 2000. The inconclusive results of the direct search for the Higgs boson at LEP resulted in a final lower bound of the Higgs mass at the 95% confidence level.[17]
In parallel to the direct search program, LEP made precision measurements of many observables of the weak interactions. These observables are sensitive to the value of the Higgs mass through contributions of processes containing loops of virtual Higgs bosons. This allowed for the first time a direct estimate of the Higgs mass of about .[1] This estimate however is subject to the condition that the Standard Model is all there is, and no physics beyond the Standard Model come into play at these energy levels. New physical effects could potentially alter this estimate substantially.[18]
Superconducting Super Collider
Planning for a new powerful collider to explore new physics at the >1 TeV scale had already started in 1983.[19] The Superconducting Super Collider was to accelerate protons in an underground circular tunnel just outside Dallas, Texas to energies of each. One of the primary goals of this megaproject was finding the Higgs boson.[1] [20]
In preparation for this machine, extensive phenomenological studies were produced for the production of Higgs bosons in hadron colliders.[21] The big downside of hadron colliders for search for the Higgs is that they collide composite particles, and as a consequence produce many more background events and provide less information about the initial state of the collision. On the other hand, they provide a much higher centre-of-mass energy than lepton colliders (such as LEP) of a similar technological level. However, hadron colliders also provide another way producing a Higgs boson through the collision of two gluons mediated by a triangle of heavy (top or bottom) quarks.[1]
The Superconducting Super Collider project however was plagued by budget problems, and in 1993 Congress decided to pull the plug on the project, despite $2 billion having already been spent.[1]
Tevatron
On 1 March 2001, the Tevatron Proton-antiproton (p) collider at Fermilab near Chicago commenced its run 2. After run 1 (1992–1996), in which the collider had discovered the top quark, Tevatron had shut down for significant upgrades focused on improving the potential for finding the Higgs boson; the energies of the protons and antiprotons was bumped up to, and the number of collisions per second was increased by an order of magnitude (with further increases planned as the run continued). Even with the upgrades Tevatron was not guaranteed to find the Higgs. If the Higgs were too heavy (>), then the collisions would not have enough energy to produce a Higgs boson. If it were too light (<), then the Higgs would predominantly decay to pairs of bottom quarks—a signal that would be swamped by background events, and the Tevatron would not produce enough collisions to filter out the statistics. Nonetheless, the Tevatron was at the time the only operational particle collider that was sufficiently powerful to be capable of seeking the Higgs particle.[22]
Operation was planned to continue until the Tevatron could no longer keep up with the Large Hadron Collider.[22] This point was reached on 30 September 2011, when the Tevatron was shut down.[23] In their final analyses, the collaborations of the two detectors at Tevatron (CDF and DØ) report that based on their data they can exclude the possibility of a Higgs boson with a mass between and and between and at a 95% confidence level. In addition, they found an excess of events that could be from a Higgs boson in the range 115–. However, the significance of the statistics is deemed too low to base any conclusions on.[24]
On 22 December 2011, the DØ collaboration also reported limitations on the Higgs boson within the Minimal Supersymmetric Standard Model, an extension to the Standard Model. Proton-antiproton (p) collisions with a centre-of-mass energy of 1.96 TeV had allowed them to set an upper limit for Higgs boson production within MSSM ranging from 90 to 300 GeV, and excluding > 20–30 for masses of the Higgs boson below 180 GeV (is the ratio of the two Higgs doublet vacuum expectation values).[25]
Large Hadron Collider
Full operation at the LHC was delayed for 14 months from its initial successful tests, on 10 September 2008, until mid-November 2009,[26] [27] following a magnet quench event nine days after its inaugural tests that damaged over 50 superconducting magnets and contaminated the vacuum system.[28] The quench was traced to a faulty electrical connection and repairs took several months;[29] [30] electrical fault detection and rapid quench-handling systems were also upgraded.
Data collection and analysis in search of Higgs intensified from 30 March 2010 when the LHC began operating at 7 Tev .[31] Preliminary results from the ATLAS and CMS experiments at the LHC as of July 2011 excluded a Standard Model Higgs boson in the mass range 155-[32] and 149-,[33] respectively, at 95% CL. All of the above confidence intervals were derived using the CLs method.
As of December 2011 the search had narrowed to the approximate region to 115–130 GeV, with a specific focus around 125 GeV, where both the ATLAS and CMS experiments had independently reported an excess of events,[34] [35] meaning that a higher than expected number of particle patterns compatible with the decay of a Higgs boson were detected in this energy range. The data was insufficient to show whether or not these excesses were due to background fluctuations (i.e. random chance or other causes), and its statistical significance was not large enough to draw conclusions yet or even formally to count as an "observation", but the fact that two independent experiments had both shown excesses at around the same mass led to considerable excitement in the particle physics community.[36]
At the end of December 2011, it was therefore widely expected that the LHC would provide sufficient data to either exclude or confirm the existence of the Standard Model Higgs boson by the end of 2012, when their 2012 collision data (at energies of 8 TeV) had been examined.[37]
Updates from the two LHC teams continued during the first part of 2012, with the tentative December 2011 data largely being confirmed and developed further. Updates were also available from the team analysing the final data from the Tevatron. All of these continued to highlight and narrow down the 125 GeV region as showing interesting features.
On 2 July 2012, the ATLAS collaboration published additional analyses of their 2011 data, excluding boson mass ranges of 111.4 GeV to 116.6 GeV, 119.4 GeV to 122.1 GeV, and 129.2 GeV to 541 GeV. They observed an excess of events corresponding to the Higgs boson mass hypotheses around 126 GeV with a local significance of 2.9 sigma.[38] On the same date, the DØ and CDF collaborations announced further analysis that increased their confidence. The significance of the excesses at energies between 115 and 140 GeV was now quantified as 2.9 standard deviations, corresponding to a 1 in 550 probability of being due to a statistical fluctuation. However, this still fell short of the 5 sigma confidence, therefore the results of the LHC experiments were necessary to establish a discovery. They excluded Higgs mass ranges at 100–103 and 147–180 GeV.[39] [40]
Discovery of new boson
On 22 June 2012 CERN announced an upcoming seminar covering tentative findings for 2012,[41] [42] and shortly afterwards rumours began to spread in the media that this would include a major announcement, but it was unclear whether this would be a stronger signal or a formal discovery.[43] [44] Speculation escalated to a "fevered" pitch when reports emerged that Peter Higgs, who proposed the particle, was to be attending the seminar.[45] [46] On 4 July 2012 CMS announced the discovery of a previously unknown boson with mass 125.3 ± 0.6 GeV/c2[47] [48] and ATLAS of a boson with mass 126.5 GeV/c2.[49] [50] Using the combined analysis of two decay modes (known as 'channels'), both experiments reached a local significance of 5 sigma — or less than a 1 in one million chance of a statistical fluctuation being that strong. When additional channels were taken into account, the CMS significance was 4.9 sigma.
The two teams had been working independent from each other, meaning they did not discuss their results with each other, providing additional certainty that any common finding was genuine validation of a particle. This level of evidence, confirmed independently by two separate teams and experiments, meets the formal level of proof required to announce a confirmed discovery of a new particle. CERN has been cautious, and stated only that the new particle is "consistent with" the Higgs boson, but scientists have not positively identified it as being the Higgs boson, pending further data collection and analysis.[51]
On July 31, the ATLAS collaboration presented further data analysis, including a third channel.[52] They improved the significance to 5.9 sigma, and described it as an "observation of a new particle" with mass . Also CMS improved the significance to 5 sigma with the boson's mass at .[53]
On 14 March 2013 CERN confirmed that:
"CMS and ATLAS have compared a number of options for the spin-parity of this particle, and these all prefer no spin and even parity [two fundamental criteria of a Higgs boson consistent with the Standard Model]. This, coupled with the measured interactions of the new particle with other particles, strongly indicates that it is a Higgs boson."
Events in 2012
2012 (post-discovery)
In 2012, observations were considered consistent with the observed particle being the Standard Model Higgs boson. The particle decays into at least some of the predicted channels. Moreover, the production rates and branching ratios for the observed channels match the predictions by the Standard Model within the experimental uncertainties. However, the experimental uncertainties still left room for alternative explanations. It was therefore considered too early to conclude that the found particle was indeed the Standard Model Higgs boson.[54]
Further confirmation required more precise data on some of the characteristic of the new particle, including its other decay channels and various quantum numbers such as its parity. To allow for further data gathering, the LHC proton-proton collision run had been extended by seven weeks, postponing the planned long shutdown for upgrades in 2013.[55]
In November 2012, in a conference in Tokyo researchers said evidence gathered since July was falling into line with the basic Standard Model more than its alternatives, with a range of results for several interactions matching that theory's predictions.[56] Physicist Matt Strassler highlighted "considerable" evidence that the new particle is not a pseudoscalar negative parity particle (a required finding for a Higgs boson), "evaporation" or lack of increased significance for previous hints of non-Standard Model findings, expected Standard Model interactions with W and Z bosons, absence of "significant new implications" for or against supersymmetry, and in general no significant deviations to date from the results expected of a Standard Model Higgs boson.[57] However some kinds of extensions to the Standard Model would also show very similar results;[58] based on other particles that are still being understood long after their discovery, it could take many years to know for sure, and decades to understand the particle that has been found.
Premature media reports of confirmation as a Higgs boson
In late 2012, Time,[59] Forbes,[60] Slate,[61] NPR,[62] and others[63] announced incorrectly that the existence of the Higgs boson had been confirmed. Numerous statements by the discoverers at CERN and other experts since July 2012 had reiterated that a particle was discovered but it was not yet confirmed to be a Higgs boson. It was only in March 2013 that it was announced officially.[64] This was followed by the making of a documentary film about the hunt.[65]
Timeline of experimental evidence
All results refer to the Standard Model Higgs boson, unless otherwise stated.
- 2000–2004 – using data collected before 2000, in 2003–2004 Large Electron–Positron Collider experiments published papers which set a lower bound for the Higgs boson of at the 95% confidence level (CL), with a small number of events around 115 GeV.
- July 2010 – data from CDF (Fermilab) and DØ (Tevatron) experiments exclude the Higgs boson in the range 158– at 95% CL.[66] [67]
- 24 April 2011 – media reports "rumors" of a find; these were debunked by May 2011.[68] They had not been a hoax, but were based on unofficial, unreviewed results.[69]
- 24 July 2011 – the LHC reported possible signs of the particle, the ATLAS Note concluding: "In the low mass range (c. 120–140 GeV) an excess of events with a significance of approximately 2.8 sigma above the background expectation is observed" and the BBC reporting that "interesting particle events at a mass of between 140 and 145 GeV" were found.[70] [71] These findings were repeated shortly thereafter by researchers at the Tevatron with a spokesman stating that: "There are some intriguing things going on around a mass of 140GeV."[70] On 22 August 2011 it was reported that these anomalous results had become insignificant on the inclusion of more data from ATLAS and CMS and that the non-existence of the particle had been confirmed by LHC collisions to 95% certainty between 145 and 466 GeV (except for a few small islands around 250 GeV).[72]
- 23–24 July 2011 – Preliminary LHC results exclude the ranges 155– (ATLAS) and 149– (CMS) at 95% CL.
- 27 July 2011 – preliminary CDF/DØ results extend the excluded range to 156– at 95% CL.[73]
- 18 November 2011 – a combined analysis of ATLAS and CMS data further narrowed the window for the allowed values of the Higgs boson mass to 114–141 GeV.[74]
- 13 December 2011 – experimental results were announced from the ATLAS and CMS experiments, indicating that if the Higgs boson exists, its mass is limited to the range 116–130 GeV (ATLAS) or 115–127 GeV (CMS), with other masses excluded at 95% CL. Observed excesses of events at around 124 GeV (CMS) and 125–126 GeV (ATLAS) are consistent with the presence of a Higgs boson signal, but also consistent with fluctuations in the background. The global statistical significances of the excesses are 1.9 sigma (CMS) and 2.6 sigma (ATLAS) after correction for the look elsewhere effect.
- 22 December 2011 – the DØ collaboration also sets limits on Higgs boson masses within the Minimal Supersymmetric Standard Model (an extension of the Standard Model), with an upper limit for production ranging from 90 to 300 GeV, and excluding tanβ>20–30 for Higgs boson masses below 180 GeV at 95% CL.
- 7 February 2012 – updating the December results, the ATLAS and CMS experiments constrain the Standard Model Higgs boson, if it exists, to the range 116–131 GeV and 115–127 GeV, respectively, with the same statistical significance as before.[75] [76]
- 7 March 2012 – the DØ and CDF collaborations announced that they found excesses that might be interpreted as coming from a Higgs boson with a mass in the region of 115 to in the full sample of data from Tevatron. The significance of the excesses is quantified as 2.2 standard deviations, corresponding to a 1 in 250 probability of being due to a statistical fluctuation. This is a lower significance, but consistent with and independent of the ATLAS and CMS data at the LHC.[77] [78] This new result also extends the range of Higgs-mass values excluded by the Tevatron experiments at 95% CL, which becomes 147-.[79] [80]
- 2 July 2012 – the ATLAS collaboration further analysed their 2011 data, excluding Higgs mass ranges of 111.4 GeV to 116.6 GeV, 119.4 GeV to 122.1 GeV, and 129.2 GeV to 541 GeV. Higgs bosons are probably located at 126 GeV with significance of 2.9 sigma. On the same day, the DØ and CDF collaborations also announced further analysis, increasing their confidence that the data between 115 and 140 GeV is corresponding to a Higgs boson to 2.9 sigma, excluding mass ranges at 100–103 and 147–180 GeV.
- 4 July 2012 – the CMS collaboration announced the discovery of a boson with mass within 4.9 σ (sigma) (up to 5 sigma depending on the analysed channel), and the ATLAS collaboration a boson with mass of ~126.5 GeV/c2.
- 31 July 2012 – the ATLAS collaboration further improved their analysis and announced the discovery of a boson with mass . Also CMS improved the significance to 5 sigma with the boson's mass at .
Statistical analysis
In 2012, the "5-sigma" criterion required by the scientists at the LHC, and its underlying frequentist interpretation of probability, triggered the interest of some statisticians, especially Bayesians: "five standard deviations, assuming normality, means a p-value of around 0.0000005 [...] Are the particle physics community completely wedded to frequentist analysis?".[81] However, the research at LHC being already too advanced, the discussion didn't seem to have led to a Bayesian re-analysis of the data.
Notes and References
- A Historical Profile of the Higgs Boson. John . Ellis. Mary K. . Gaillard. Dimitri V. . Nanopoulos. 1201.6045. hep-ph . 2012 .
- Web site: O'Luanaigh . C. . 14 March 2013 . New results indicate that new particle is a Higgs boson . . 2013-10-09.
- Web site: The Higgs boson: Evolution or revolution? . LHC Backgrounders . CERN . 18 July 2012 . 13 December 2011.
- Web site: What should we know about the Higgs particle? . Goulette . Marc . Atlas Experiment/CERN . 15 August 2012 . 21 January 2022 . live . 13 January 2022 . https://web.archive.org/web/20220113145217/https://atlas.cern/updates/blog/what-should-we-know-about-higgs-particle .
- Web site: Getting to know the Higgs particle: new discoveries! . Institute of Physics . 21 January 2022 . live . 13 January 2022 . https://web.archive.org/web/20220113155023/https://www.iop.org/education/school-and-college-students/Qubit/higgs-particle-new-discoveries .
- Web site: Onyisi . P. . 23 October 2012 . Higgs boson FAQ . University of Texas ATLAS group . 8 January 2013 . 12 October 2013 . https://web.archive.org/web/20131012130340/https://wikis.utexas.edu/display/utatlas/Higgs+boson+FAQ . live .
- Web site: Strassler . M. . 12 October 2012 . The Higgs FAQ 2.0 . ProfMattStrassler.com . 8 January 2013 . [Q] Why do particle physicists care so much about the Higgs particle?
[A] Well, actually, they don't. What they really care about is the Higgs field, because it is so important. [emphasis in original] . 12 October 2013 . https://web.archive.org/web/20131012042637/http://profmattstrassler.com/articles-and-posts/the-higgs-particle/the-higgs-faq-2-0/ . live .
- https://web.archive.org/web/20120615043418/http://www.msnbc.msn.com/id/47783507/ns/technology_and_science-science/t/hunt-higgs-boson-hits-key-decision-point/ Hunt for Higgs boson hits key decision point
- http://wlcg.web.cern.ch Worldwide LHC Computing Grid main page
- http://lcg-archive.web.cern.ch/lcg-archive/public/overview.htm What is the Worldwide LHC Computing Grid? (Public 'About' page)
- A Phenomenological Profile of the Higgs Boson. John R. . Ellis. Mary K. . Gaillard. Dimitri V. . Nanopoulos. Nucl. Phys. B . 106 . 1976 . 292. 10.1016/0550-3213(76)90382-5. 1976NuPhB.106..292E .
- Radiative Corrections as the Origin of Spontaneous Symmetry Breaking. Sidney R. . Coleman . Erick J. . Weinberg. Physical Review D . 7 . 6 . 1973 . 1888–1910. 10.1103/PhysRevD.7.1888. 1973PhRvD...7.1888C . hep-th/0507214. 6898114 .
- The Strength of Weak Interactions at Very High-Energies and the Higgs Boson Mass. Benjamin W. . Lee. C. . Quigg. H.B. . Thacker. Physical Review Letters . 38 . 16 . 1977 . 883–885. 10.1103/PhysRevLett.38.883. 1977PhRvL..38..883L .
- G. . Barbiellini. G. . Bonneaud. G . Coignet. J. . Ellis. J. F. . Grivaz. M. K. . Gaillard. C. . Matteuzzi. B. H.. Wiik. The production and detection of Higgs particles at LEP . DESY 79/27, ECFA/LEP SSG/9/4 . May 1979. 2.
- Book: H. Baer . etal. New particles. Physics at LEP. J. . Ellis. R.D. . Peccei. CERNReport 86-02 Vol. 1. 1986. http://cdsweb.cern.ch/record/166310/files/CERN-86-02-V-1.pdf.
- Web site: The LEP experiments: Testing the Standard Model. CERN. 2008. 24 August 2012.
- W.-M. Yao . 2006 . Review of Particle Physics - Searches for Higgs Bosons . . 33 . 1. 1 . astro-ph/0601168 . 2006JPhG...33....1Y . 10.1088/0954-3899/33/1/001. 117958297 .
- How Can a Heavy Higgs Boson be Consistent with the Precision Electroweak Measurements?. Michael E. . Peskin. James D. . Wells. Physical Review D . 64 . 9 . 2001 . 093003. hep-ph/0101342. 10.1103/PhysRevD.64.093003. 2001PhRvD..64i3003P . 5932066 .
- Wojcicki . S.. J. . Adams. etal . 1983. Report of the 1983 Subpanel on New Facilities for the U.S. High Energy Physics Program of the High Energy Physics Advisory Panel. U.S. Department of Energy.
- E. . Eichten. I. . Hinchliffe. K. . Lane. C. . Quigg. Reviews of Modern Physics . 56 . 4. 579–707 . 1984. Supercollider physics. 10.1103/RevModPhys.56.579. 1984RvMP...56..579E .
- Book: J.F. . Gunion. H.E. . Haber. G.L. . Kane. S. . Dawson. The Higgs hunter's guide. 1990. Addison-Wesley. 9780201509359.
- Operation and physics potential of Tevatron Run II. John . Womersley (DØ collaboration). European Physical Journal C . 4S1 . 2002 . 12. 10.1007/s1010502cs112. 122177877 .
- Tevatron shuts down but analysis continues. Fermilab. 13 September 2011. 25 August 2012.
- Updated Combination of CDF and D0 Searches for Standard Model Higgs Boson Production with up to 10.0 fb-1 of Data. The CDF Collaboration, the D0 Collaboration, the Tevatron New Physics, Higgs Working Group. 1207.0449. hep-ex. 2012.
- DØ Collaboration. 1112.5431. Search for Higgs bosons of the minimal supersymmetric standard model in p collisions at (√s)=1.96 TeV. Physics Letters B . 710 . 4–5. 2012 . 569–577. 10.1016/j.physletb.2012.03.021. 2012PhLB..710..569D .
- Web site: CERN management confirms new LHC restart schedule . 9 February 2009 . CERN Press Office . 20 November 2016.
- Web site: CERN reports on progress towards LHC restart . 19 June 2009 . CERN Press Office . 20 November 2016.
- Web site: 15 October 2008 . Interim Summary Report on the Analysis of the 19 September 2008 Incident at the LHC . . EDMS 973073 . 2009-09-28.
- 16 October 2008 . CERN releases analysis of LHC incident . CERN Press Office . 20 November 2016.
- 5 December 2008 . LHC to restart in 2009 . CERN Press Office . 20 November 2016.
- Web site: CERN Bulletin Issue No. 18–20/2010 . Cdsweb.cern.ch . 3 May 2010 . 7 December 2011.
- Web site: Combined Standard Model Higgs Boson Searches in pp Collisions at root-s = 7 TeV with the ATLAS Experiment at the LHC . ATLAS-CONF-2011-112 . 24 July 2011.
- Web site: Search for standard model Higgs boson in pp collisions at sqrt=7 TeV . CMS-PAS-HIG-11-011 . 23 July 2011.
- News: ATLAS experiment presents latest Higgs search status. CERN. 13 December 2011. 13 December 2011. dead. https://web.archive.org/web/20120106070159/http://www.atlas.ch/news/2011/status-report-dec-2011.html. 6 January 2012.
- News: CMS search for the Standard Model Higgs Boson in LHC data from 2010 and 2011 . CERN. 13 December 2011 . 13 December 2011.
- https://www.bbc.co.uk/news/science-environment-16158374 LHC: Higgs boson 'may have been glimpsed' – BBC News, 13 December 2011
- http://press.cern/press-releases/2011/12/atlas-and-cms-experiments-present-higgs-search-status CERN press release #25.11, 13 December 2011: ATLAS and CMS experiments present Higgs search status
- ATLAS Collaboration . 2 July 2012 . Combined search for the Standard Model Higgs boson in pp collisions at sqrt(s) = 7 TeV with the ATLAS detector . Physical Review D . 86 . 3 . 032003 . 1207.0319 . 10.1103/PhysRevD.86.032003. 2012PhRvD..86c2003A . 208865656 .
- Web site: Tevatron scientists announce their final results on the Higgs particle . Fermilab press room . 2 July 2012 . 2 July 2012.
- The CDF & D0 Collaborations . 2 July 2012 . Updated Combination of CDF and D0 Searches for Standard Model Higgs Boson Production with up to 10.0 fb-1 of Data . hep-ex . 1207.0449.
- Web site: Press Conference: Update on the search for the Higgs boson at CERN on 4 July 2012 . Indico.cern.ch . 22 June 2012 . 4 July 2012.
- News: CERN to give update on Higgs search . CERN . 22 June 2012. 20 November 2016.
- Web site: Higgs boson particle results could be a quantum leap . Times LIVE . 28 June 2012 . 4 July 2012.
- http://www.abc.net.au/news/2012-07-04/cern-prepares-to-deliver-higgs-particle-findings/4108622 CERN prepares to deliver Higgs particle findings
- http://www.huffingtonpost.co.uk/2012/07/03/god-particle-finally-discovered-peter-higgs_n_1645865.html God Particle Finally Discovered? Higgs Boson News At Cern Will Even Feature Scientist It's Named After
- https://archive.today/20130204090846/http://www.telegraphindia.com/1120704/jsp/frontpage/story_15689014.jsp Higgs on way, theories thicken
- Web site: Observation of a New Particle with a Mass of 125 GeV . Lucas . Taylor . 4 July 2012 . CMS Public Website . CERN . 4 July 2012.
- CMS collaboration. Observation of a new boson with a mass near 125 GeV. CMS-Pas-Hig-12-020. 2012.
- Web site: Latest Results from ATLAS Higgs Search . ATLAS News . CERN . 4 July 2012 . 4 July 2012 . dead . https://web.archive.org/web/20120707132113/http://www.atlas.ch/news/2012/latest-results-from-higgs-search.html . 7 July 2012.
- ATLAS collaboration. Observation of an Excess of Events in the Search for the Standard Model Higgs boson with the ATLAS detector at the LHC. Atlas-Conf-2012-093. 2012.
- News: CERN experiments observe particle consistent with long-sought Higgs boson . CERN press release . 4 July 2012 . 20 November 2016.
- ATLAS collaboration. Observation of a New Particle in the Search for the Standard Model Higgs Boson with the ATLAS Detector at the LHC. Physics Letters B. 716. 1. 1–29. 2012. 1207.7214. 10.1016/j.physletb.2012.08.020. 2012PhLB..716....1A . Abajyan. T.. Abbott. B.. Abdallah. J.. Abdel Khalek. S.. Abdelalim. A.A.. Abdinov. O.. Aben. R.. Abi. B.. Abolins. M.. Abouzeid. O.S.. Abramowicz. H.. Abreu. H.. Acharya. B.S.. Adamczyk. L.. Adams. D.L.. Addy. T.N.. Adelman. J.. Adomeit. S.. Adragna. P.. Adye. T.. Aefsky. S.. Aguilar-Saavedra. J.A.. Agustoni. M.. Aharrouche. M.. Ahlen. S.P.. Ahles. F.. Ahmad. A.. Ahsan. M.. Aielli. G.. 119169617. 1.
- CMS collaboration. Observation of a new boson at a mass of 125 GeV with the CMS experiment at the LHC. Physics Letters B. 716. 1. 30–61. 2012. 1207.7235. 10.1016/j.physletb.2012.08.021. 2012PhLB..716...30C . Khachatryan. V.. Sirunyan. A. M.. Tumasyan. A.. Adam. W.. Aguilo. E.. Bergauer. T.. Dragicevic. M.. Erö. J.. Fabjan. C.. Friedl. M.. Frühwirth. R.. Ghete. V. M.. Hammer. J.. Hoch. M.. Hörmann. N.. Hrubec. J.. Jeitler. M.. Kiesenhofer. W.. Knünz. V.. Krammer. M.. Krätschmer. I.. Liko. D.. Majerotto. W.. Mikulec. I.. Pernicka. M.. Rahbaran. B.. Rohringer. C.. Rohringer. H.. Schöfbeck. R.. 1.
- Web site: Higgs bosons: theory and searches. PDGLive. Particle Data Group. 12 July 2012. 15 August 2012.
- Web site: LHC 2012 proton run extended by seven weeks. James. Gillies. CERN bulletin. 23 July 2012. 29 August 2012.
- News: Higgs boson behaving as expected. 3 News NZ. 15 November 2012.
- http://profmattstrassler.com/2012/11/14/higgs-results-at-kyoto Higgs Results at Kyoto
- News: Sample. Ian. Higgs particle looks like a bog Standard Model boson, say scientists. 15 November 2012. The Guardian. 2012-11-14. London.
- News: Person Of The Year 2012 . Time . 19 December 2012.
- News: Knapp. Alex. Higgs Boson Discovery Has Been Confirmed. 27 October 2017. Forbes. en.
- Higgs Boson Confirmed; CERN Discovery Passes Test. Slate . 11 September 2012.
- News: The Year of the Higgs, and Other Tiny Advances in Science. NPR.org.
- News: Confirmed: the Higgs boson does exist. The Sydney Morning Herald .
- News: AP CERN chief: Higgs boson quest could wrap up by midyear. 20 February 2013. MSNBC. 2013-01-27. Associated Press. Rolf Heuer, director of [CERN], said he is confident that "towards the middle of the year, we will be there.". – Interview by AP, at the World Economic Forum, 26 Jan 2013.
- http://www.math.columbia.edu/~woit/wordpress/?p=6308 Particle Fever - Not Even Wrong
- T. Aaltonen (CDF and DØ Collaborations) . 2010 . Combination of Tevatron searches for the standard model Higgs boson in the W+W− decay mode . . 104 . 6 . 61802 . 1001.4162 . 2010PhRvL.104f1802A . 10.1103/PhysRevLett.104.061802. 20366812 . 7998819 .
- Web site: Fermilab experiments narrow allowed mass range for Higgs boson . 26 July 2010 . . 26 July 2010.
- 10.1038/473136a . 21562534 . The collider that cried 'Higgs' . 2011 . Brumfiel . Geoff . Nature . 473 . 7346 . 136–7 . 2011Natur.473..136B. free .
- News: Butterworth . Jon . Jon Butterworth . The Guardian, "Rumours of the Higgs at ATLAS" . Guardian . 24 April 2011 . 7 December 2011 . London.
- News: Higgs boson 'hints' also seen by US lab . Paul . Rincon . . 24 July 2011 . 13 December 2011.
- https://atlas.web.cern.ch/Atlas/GROUPS/PHYSICS/CONFNOTES/ATLAS-CONF-2011-112/ATLAS-CONF-2011-112.pdf "Combined Standard Model Higgs Boson Searches in pp Collisions at √s = 7 TeV with the ATLAS Experiment at the LHC"
- News: Higgs boson range narrows at European collider . Pallab . Ghosh . . 22 August 2011 . 13 December 2011.
- The CDF & D0 Collaborations . 27 July 2011 . Combined CDF and D0 Upper Limits on Standard Model Higgs Boson Production with up to 8.6 fb-1 of Data . hep-ex . 1107.5518. Collaborations . the Tevatron New Phenomena . Higgs Working Group .
- News: Higgs hunt enters endgame . Nature News . Geoff . Brumfiel . 22 November 2011 . 18 November 2011.
- ATLAS Collaboration. Combined search for the Standard Model Higgs boson using up to 4.9 fb-1 of pp collision data at s=7 TeV with the ATLAS detector at the LHC. 2012. Physics Letters B. 710. 1. 49–66. 10.1016/j.physletb.2012.02.044. 1202.1408. Abbott. B.. Abdallah. J.. Abdel Khalek. S.. Abdelalim. A.A.. Abdesselam. A.. Abdinov. O.. Abi. B.. Abolins. M.. Abouzeid. O.S.. Abramowicz. H.. Abreu. H.. Acerbi. E.. Acharya. B.S.. Adamczyk. L.. Adams. D.L.. Addy. T.N.. Adelman. J.. Aderholz. M.. Adomeit. S.. Adragna. P.. Adye. T.. Aefsky. S.. Aguilar-Saavedra. J.A.. Aharrouche. M.. Ahlen. S.P.. Ahles. F.. Ahmad. A.. Ahsan. M.. Aielli. G.. 2012PhLB..710...49A . 118451345. 1.
- CMS Collaboration. Combined results of searches for the standard model Higgs boson in pp collisions at s=7 TeV. 2012. Physics Letters B. 710. 1. 26–48. 10.1016/j.physletb.2012.02.064. 1202.1488. Khachatryan. V.. Sirunyan. A.M.. Tumasyan. A.. Adam. W.. Bergauer. T.. Dragicevic. M.. Erö. J.. Fabjan. C.. Friedl. M.. Frühwirth. R.. Ghete. V. M.. Hammer. J.. Hoch. M.. Hörmann. N.. Hrubec. J.. Jeitler. M.. Kiesenhofer. W.. Krammer. M.. Liko. D.. Mikulec. I.. Pernicka. M.. Rahbaran. B.. Rohringer. C.. Rohringer. H.. Schöfbeck. R.. Strauss. J.. Taurok. A.. Teischinger. F.. Wagner. P.. 2012PhLB..710...26C . 118551591 . 1.
- http://www.csmonitor.com/Science/2012/0307/Higgs-boson-coming-into-focus-say-scientists-video Higgs boson coming into focus, say scientists (+video)
- Lemonick, Michael D. (22 February 2012) Higgs Boson: Found at Last?. TIME. Retrieved on 9 March 2012.
- Web site: Tevatron experiments report latest results in search for Higgs . 7 March 2012.
- News: Overbye . Dennis . Data Hint at Hypothetical Particle, Key to Mass in the Universe . 7 March 2012 . . 7 March 2012 .
- Web site: Higgs Boson–Digest and Discussion . O'Hagan . Tony . 2012 . 25 December 2014.