Divergence of the sum of the reciprocals of the primes

The sum of the reciprocal of the primes increasing without bound. The x axis is in log scale, showing that the divergence is very slow. The red function is a lower bound that also diverges.

The sum of the reciprocals of all prime numbers diverges; that is:

${\displaystyle \sum _{p{\text{ prime}}}{\frac {1}{p}}={\frac {1}{2}}+{\frac {1}{3}}+{\frac {1}{5}}+{\frac {1}{7}}+{\frac {1}{11}}+{\frac {1}{13}}+{\frac {1}{17}}+\cdots =\infty }$

This was proved by Leonhard Euler in 1737,^[1] and strengthens (i.e. it gives more information than) Euclid's 3rd-century-BC result that there are infinitely many prime numbers.

There are a variety of proofs of Euler's result, including a lower bound for the partial sums stating that

${\displaystyle \sum _{\scriptstyle p{\text{ prime}} \atop \scriptstyle p\leq n}{\frac {1}{p}}\geq \log \log(n+1)-\log {\frac {\pi ^{2}}{6}}}$

for all natural numbers n. The double natural logarithm (log log) indicates that the divergence might be very slow, which is indeed the case. See Meissel–Mertens constant.

The harmonic series[]

First, we describe how Euler originally discovered the result. He was considering the harmonic series

${\displaystyle \sum _{n=1}^{\infty }{\frac {1}{n}}=1+{\frac {1}{2}}+{\frac {1}{3}}+{\frac {1}{4}}+\cdots =\infty }$

He had already used the following "product formula" to show the existence of infinitely many primes.

${\displaystyle \sum _{n=1}^{\infty }{\frac {1}{n}}=\prod _{p}\left(1+{\frac {1}{p}}+{\frac {1}{p^{2}}}+\cdots \right)=\prod _{p}{\frac {1}{1-p^{-1}}}}$

Here the product is taken over the set of all primes.

Such infinite products are today called Euler products. The product above is a reflection of the fundamental theorem of arithmetic. Euler noted that if there were only a finite number of primes, then the product on the right would clearly converge, contradicting the divergence of the harmonic series.

Proofs[]

Euler's proof[]

Euler considered the above product formula and proceeded to make a sequence of audacious leaps of logic. First, he took the natural logarithm of each side, then he used the Taylor series expansion for log x as well as the sum of a converging series:

${\displaystyle {\begin{aligned}\log \left(\sum _{n=1}^{\infty }{\frac {1}{n}}\right)&{}=\log \left(\prod _{p}{\frac {1}{1-p^{-1}}}\right)=-\sum _{p}\log \left(1-{\frac {1}{p}}\right)\\[5pt]&=\sum _{p}\left({\frac {1}{p}}+{\frac {1}{2p^{2}}}+{\frac {1}{3p^{3}}}+\cdots \right)\\[5pt]&=\sum _{p}{\frac {1}{p}}+{\frac {1}{2}}\sum _{p}{\frac {1}{p^{2}}}+{\frac {1}{3}}\sum _{p}{\frac {1}{p^{3}}}+{\frac {1}{4}}\sum _{p}{\frac {1}{p^{4}}}+\cdots \\[5pt]&=A+{\frac {1}{2}}B+{\frac {1}{3}}C+{\frac {1}{4}}D+\cdots \\[5pt]&=A+K\end{aligned}}}$

for a fixed constant K < 1. Then he invoked the relation

${\displaystyle \sum _{n=1}^{\infty }{\frac {1}{n}}=\log \infty ,}$

which he explained, for instance in a later 1748 work,^[2] by setting x = 1 in the Taylor series expansion

${\displaystyle \log \left({\frac {1}{1-x}}\right)=\sum _{n=1}^{\infty }{\frac {x^{n}}{n}}.}$

This allowed him to conclude that

${\displaystyle A={\frac {1}{2}}+{\frac {1}{3}}+{\frac {1}{5}}+{\frac {1}{7}}+{\frac {1}{11}}+\cdots =\log \log \infty .}$

It is almost certain that Euler meant that the sum of the reciprocals of the primes less than n is asymptotic to log log n as n approaches infinity. It turns out this is indeed the case, and a more precise version of this fact was rigorously proved by Franz Mertens in 1874.^[3] Thus Euler obtained a correct result by questionable means.

Erdős's proof by upper and lower estimates[]

The following proof by contradiction is due to Paul Erdős.

Let p_i denote the ith prime number. Assume that the sum of the reciprocals of the primes converges

Then there exists a smallest positive integer k such that

${\displaystyle \sum _{i=k+1}^{\infty }{\frac {1}{p_{i}}}<{\frac {1}{2}}\qquad (1)}$

For a positive integer x, let M_x denote the set of those n in {1, 2, …, x} which are not divisible by any prime greater than p_k (or equivalently all n ≤ x which are a product of powers of primes p_i ≤ p_k). We will now derive an upper and a lower estimate for |M_x|, the number of elements in M_x. For large x, these bounds will turn out to be contradictory.

Upper estimate:

Every n in M_x can be written as n = m²r with positive integers m and r, where r is square-free. Since only the k primes p₁, …, p_k can show up (with exponent 1) in the prime factorization of r, there are at most 2^k different possibilities for r. Furthermore, there are at most √x possible values for m. This gives us the upper estimate

${\displaystyle |M_{x}|\leq 2^{k}{\sqrt {x}}\qquad (2)}$

Lower estimate:

The remaining x − |M_x| numbers in the set difference {1, 2, …, x} \ M_x are all divisible by a prime greater than p_k. Let N_i,x denote the set of those n in {1, 2, …, x} which are divisible by the ith prime p_i. Then

${\displaystyle \{1,2,\ldots ,x\}\smallsetminus M_{x}=\bigcup _{i=k+1}^{\infty }N_{i,x}}$

Since the number of integers in N_i,x is at most x/p_i (actually zero for p_i > x), we get

${\displaystyle x-|M_{x}|\leq \sum _{i=k+1}^{\infty }|N_{i,x}|<\sum _{i=k+1}^{\infty }{\frac {x}{p_{i}}}}$

Using (1), this implies

${\displaystyle {\frac {x}{2}}<|M_{x}|\qquad (3)}$

This produces a contradiction: when x ≥ 2^{2k + 2}, the estimates (2) and (3) cannot both hold, because x/2 ≥ 2^k√x.

Proof that the series exhibits log-log growth[]

Here is another proof that actually gives a lower estimate for the partial sums; in particular, it shows that these sums grow at least as fast as log log n. The proof is due to Ivan Niven,^[4] adapted from the product expansion idea of Euler. In the following, a sum or product taken over p always represents a sum or product taken over a specified set of primes.

The proof rests upon the following four inequalities:

• Every positive integer i can be uniquely expressed as the product of a square-free integer and a square as a consequence of the fundamental theorem of arithmetic. Start with:

${\displaystyle i=q_{1}^{2{\alpha }_{1}+{\beta }_{1}}\cdot q_{2}^{2{\alpha }_{2}+{\beta }_{2}}\cdot \ldots \cdot q_{r}^{2{\alpha }_{r}+{\beta }_{r}},}$

where the βs are 0 (the corresponding power of prime q is even) or 1 (the corresponding power of prime q is odd). Factor out one copy of all the primes whose β is 1, leaving a product of primes to even powers, itself a square. Relabeling:

${\displaystyle i=(p_{1}p_{2}\ldots p_{s})\cdot b^{2},}$

where the first factor, a product of primes to the first power, is square free. Inverting all the is gives the inequality

${\displaystyle \sum _{i=1}^{n}{\frac {1}{i}}\leq \left(\prod _{p\leq n}\left(1+{\frac {1}{p}}\right)\right)\cdot \left(\sum _{k=1}^{n}{\frac {1}{k^{2}}}\right)=A\cdot B.}$

To see this, note that

${\displaystyle {\frac {1}{i}}={\frac {1}{p_{1}p_{2}\ldots p_{s}}}\cdot {\frac {1}{b^{2}}},}$

where

${\displaystyle {\begin{aligned}\left(1+{\frac {1}{p}}_{1}\right)\left(1+{\frac {1}{p}}_{2}\right)\ldots \left(1+{\frac {1}{p}}_{s}\right)&=\left({\frac {1}{p}}_{1}\right)\left({\frac {1}{p}}_{2}\right)\ldots \left({\frac {1}{p}}_{s}\right)+\ldots \\&={\frac {1}{p_{1}p_{2}\ldots p_{s}}}+\ldots .\end{aligned}}}$

That is, ${\displaystyle 1/(p_{1}p_{2}\ldots p_{s})}$ is one of the summands in the expanded product A. And since ${\displaystyle 1/b^{2}}$ is one of the summands of B, every i is represented in one of the terms of AB when multiplied out. The inequality follows.

• The upper estimate for the natural logarithm

${\displaystyle {\begin{aligned}\log(n+1)&=\int _{1}^{n+1}{\frac {dx}{x}}\\&=\sum _{i=1}^{n}\underbrace {\int _{i}^{i+1}{\frac {dx}{x}}} _{{}\,<\,{\frac {1}{i}}}\\&<\sum _{i=1}^{n}{\frac {1}{i}}\end{aligned}}}$

• The lower estimate 1 + x < exp(x) for the exponential function, which holds for all x > 0.
• Let n ≥ 2. The upper bound (using a telescoping sum) for the partial sums (convergence is all we really need)

${\displaystyle {\begin{aligned}\sum _{k=1}^{n}{\frac {1}{k^{2}}}&<1+\sum _{k=2}^{n}\underbrace {\left({\frac {1}{k-{\frac {1}{2}}}}-{\frac {1}{k+{\frac {1}{2}}}}\right)} _{=\,{\frac {1}{k^{2}-{\frac {1}{4}}}}\,>\,{\frac {1}{k^{2}}}}\\&=1+{\frac {2}{3}}-{\frac {1}{n+{\frac {1}{2}}}}<{\frac {5}{3}}\end{aligned}}}$

Combining all these inequalities, we see that

${\displaystyle {\begin{aligned}\log(n+1)&<\sum _{i=1}^{n}{\frac {1}{i}}\\&\leq \prod _{p\leq n}\left(1+{\frac {1}{p}}\right)\sum _{k=1}^{n}{\frac {1}{k^{2}}}\\&<{\frac {5}{3}}\prod _{p\leq n}\exp \left({\frac {1}{p}}\right)\\&={\frac {5}{3}}\exp \left(\sum _{p\leq n}{\frac {1}{p}}\right)\end{aligned}}}$

Dividing through by 5/3 and taking the natural logarithm of both sides gives

${\displaystyle \log \log(n+1)-\log {\frac {5}{3}}<\sum _{p\leq n}{\frac {1}{p}}}$

as desired. ∎

Using

${\displaystyle \sum _{k=1}^{\infty }{\frac {1}{k^{2}}}={\frac {\pi ^{2}}{6}}}$

(see the Basel problem), the above constant log 5/3 = 0.51082… can be improved to log π²/6 = 0.4977…; in fact it turns out that

${\displaystyle \lim _{n\to \infty }\left(\sum _{p\leq n}{\frac {1}{p}}-\log \log n\right)=M}$

where M = 0.261497… is the Meissel–Mertens constant (somewhat analogous to the much more famous Euler–Mascheroni constant).

Proof from Dusart's inequality[]

From Dusart's inequality, we get

${\displaystyle p_{n}<n\log n+n\log \log n\quad {\mbox{for }}n\geq 6}$

Then

${\displaystyle {\begin{aligned}\sum _{n=1}^{\infty }{\frac {1}{p_{n}}}&\geq \sum _{n=6}^{\infty }{\frac {1}{p_{n}}}\\&\geq \sum _{n=6}^{\infty }{\frac {1}{n\log n+n\log \log n}}\\&\geq \sum _{n=6}^{\infty }{\frac {1}{2n\log n}}=\infty \end{aligned}}}$

by the integral test for convergence. This shows that the series on the left diverges.

Geometric and Harmonic Series Proof[]

Suppose for contradiction the sum converged. Then, there exists ${\displaystyle n}$ such that ${\displaystyle \sum _{i\geq n+1}{\frac {1}{p_{i}}}<1}$. Call this sum ${\displaystyle x}$.

Now consider the convergent geometric series ${\displaystyle x+x^{2}+x^{3}+\cdots }$.

This geometric series contains the sum of reciprocals of all numbers whose prime factorization contain only primes in the set ${\displaystyle \{p_{n+1},p_{n+2},\cdots \}}$.

Consider the subseries ${\displaystyle \sum _{i\geq 1}{\frac {1}{1+i(p_{1}p_{2}\cdots p_{n})}}}$. This is a subseries because ${\displaystyle 1+i(p_{1}p_{2}\cdots p_{n})}$ is not divisible by any ${\displaystyle p_{j},j\leq n}$.

However, by the Limit comparison test, this subseries diverges by comparing it to the harmonic series. Indeed, ${\displaystyle \lim _{i\to \infty }{\frac {1+i(p_{1}p_{2}\cdots p_{n})}{i}}=p_{1}p_{2}\cdots p_{n}}$.

Thus, we have found a divergent subseries of the original convergent series, and since all terms are positive, this gives the contradiction. We may conclude ${\displaystyle \sum _{i\geq 1}{\frac {1}{p_{i}}}}$ diverges. ${\displaystyle \blacksquare }$

Partial sums[]

While the partial sums of the reciprocals of the primes eventually exceed any integer value, they never equal an integer.

One proof^[5] is by induction: The first partial sum is 1/2, which has the form odd/even. If the nth partial sum (for n ≥ 1) has the form odd/even, then the (n + 1)st sum is

${\displaystyle {\frac {\text{odd}}{\text{even}}}+{\frac {1}{p_{n+1}}}={\frac {{\text{odd}}\cdot p_{n+1}+{\text{even}}}{{\text{even}}\cdot p_{n+1}}}={\frac {{\text{odd}}+{\text{even}}}{\text{even}}}={\frac {\text{odd}}{\text{even}}}}$

as the (n + 1)st prime p_{n + 1} is odd; since this sum also has an odd/even form, this partial sum cannot be an integer (because 2 divides the denominator but not the numerator), and the induction continues.

Another proof rewrites the expression for the sum of the first n reciprocals of primes (or indeed the sum of the reciprocals of any set of primes) in terms of the least common denominator, which is the product of all these primes. Then each of these primes divides all but one of the numerator terms and hence does not divide the numerator itself; but each prime does divide the denominator. Thus the expression is irreducible and is non-integer.

See also[]

• Euclid's theorem that there are infinitely many primes
• Small set (combinatorics)
• Brun's theorem, on the convergent sum of reciprocals of the twin primes
• List of sums of reciprocals

References[]

Sources

• Dunham, William (1999). Euler The Master of Us All. MAA. pp. 61–79. ISBN 0-88385-328-0.

External links[]

• Caldwell, Chris K. "There are infinitely many primes, but, how big of an infinity?".