This article uses technical mathematical notation for logarithms. All instances of log(x) without a subscript base should be interpreted as a natural logarithm, also commonly written as ln(x) or loge(x).
Existence of a prime number between any number and its double
This statement was first conjectured in 1845 by Joseph Bertrand[2] (1822–1900). Bertrand himself verified his statement for all integers .
His conjecture was completely proved by Chebyshev (1821–1894) in 1852[3] and so the postulate is also called the Bertrand–Chebyshev theorem or Chebyshev's theorem. Chebyshev's theorem can also be stated as a relationship with , the prime-counting function (number of primes less than or equal to ):
Prime number theorem
The prime number theorem (PNT) implies that the number of primes up to x, π(x), is roughly x/log(x), so if we replace x with 2x then we see the number of primes up to 2x is asymptotically twice the number of primes up to x (the terms log(2x) and log(x) are asymptotically equivalent). Therefore, the number of primes between n and 2n is roughly n/log(n) when n is large, and so in particular there are many more primes in this interval than are guaranteed by Bertrand's postulate. So Bertrand's postulate is comparatively weaker than the PNT. But PNT is a deep theorem, while Bertrand's Postulate can be stated more memorably and proved more easily, and also makes precise claims about what happens for small values of n. (In addition, Chebyshev's theorem was proved before the PNT and so has historical interest.)
The similar and still unsolved Legendre's conjecture asks whether for every n ≥ 1, there is a prime p such that n2 < p < (n + 1)2. Again we expect that there will be not just one but many primes between n2 and (n + 1)2, but in this case the PNT does not help: the number of primes up to x2 is asymptotic to x2/log(x2) while the number of primes up to (x + 1)2 is asymptotic to (x + 1)2/log((x + 1)2), which is asymptotic to the estimate on primes up to x2. So, unlike the previous case of x and 2x, we do not get a proof of Legendre's conjecture for large n. Error estimates on the PNT are not (indeed, cannot be) sufficient to prove the existence of even one prime in this interval. In greater detail, the PNT allows to estimate the boundaries for all ε > 0, there exists an S such that for x > S:
The ratio between the lower bound π((x+1)2) and the upper bound of π(x2) is
Note that since when , for all x > 0, and for a fixed ε, there exists an R such that the ratio above is less that 1 for all x > R. Thus, it does not ensure that there exists a prime between π(x2) and π((x+1)2). More generally, these simple bounds are not enough to prove that there exists a prime between π(xn) and π((x+1)n) for any positive integer n > 1.
Generalizations
In 1919, Ramanujan (1887–1920) used properties of the Gamma function to give a simpler proof than Chebyshev's.[4] His short paper included a generalization of the postulate, from which would later arise the concept of Ramanujan primes. Further generalizations of Ramanujan primes have also been discovered; for instance, there is a proof that
with pk the kth prime and Rn the nth Ramanujan prime.
Other generalizations of Bertrand's postulate have been obtained using elementary methods. (In the following, n runs through the set of positive integers.) In 1973, Denis Hanson proved that there exists a prime between 3n and 4n.[5]
In 2006, apparently unaware of Hanson's result, M. El Bachraoui proposed a proof that there exists a prime between 2n and 3n.[6] El Bachraoui's proof is an extension of Erdős's arguments for the primes between n and 2n. Shevelev, Greathouse, and Moses (2013) discuss related results for similar intervals.[7]
Bertrand’s postulate over the Gaussian integers is an extension of the idea of the distribution of primes, but in this case on the complex plane. Thus, as Gaussian primes extend over the plane and not only along a line, and doubling a complex number is not simply multiplying by 2 but doubling its norm (multiplying by 1+i), different definitions lead to different results, some are still conjectures, some proven.[8]
Sylvester's theorem
Bertrand's postulate was proposed for applications to permutation groups. Sylvester (1814–1897) generalized the weaker statement with the statement: the product of k consecutive integers greater than k is divisible by a prime greater than k. Bertrand's (weaker) postulate follows from this by taking k = n, and considering the k numbers n + 1, n + 2, up to and including n + k = 2n, where n > 1. According to Sylvester's generalization, one of these numbers has a prime factor greater than k. Since all these numbers are less than 2(k + 1), the number with a prime factor greater than k has only one prime factor, and thus is a prime. Note that 2n is not prime, and thus indeed we now know there exists a prime p with n < p < 2n.
Erdős proved in 1934 that for any positive integer k, there is a natural numberN such that for all n > N, there are at least k primes between n and 2n. An equivalent statement had been proved in 1919 by Ramanujan (see Ramanujan prime).
Better results
It follows from the prime number theorem that for any real there is a such that for all there is a prime such that . It can be shown, for instance, that
which implies that goes to infinity (and, in particular, is greater than 1 for sufficiently large).[10]
Non-asymptotic bounds have also been proved. In 1952, Jitsuro Nagura proved that for there is always a prime between and .[11]
In his 1998 doctoral thesis, Pierre Dusart improved the above result, showing that for ,
,
and in particular for , there exists a prime in the interval .[13]
In 2010 Pierre Dusart proved that for there is at least one prime in the interval .[14]
In 2016, Pierre Dusart improved his result from 2010, showing (Proposition 5.4) that if , there is at least one prime in the interval .[15] He also shows (Corollary 5.5) that for , there is at least one prime in the interval .
Baker, Harman and Pintz proved that there is a prime in the interval for all sufficiently large .[16]
Dudek proved that for all , there is at least one prime between and .[17]
Dudek also proved that the Riemann hypothesis implies that for all there is a prime satisfying