Nrthugu

Suppose some number $n in mathbb{N}$ is divisible by $144$.

$$implies frac{n}{144}=k, space space space k in mathbb{Z} \ iff frac{n}{36cdot4}=k iff frac{n}{36}=4k$$

Since any whole number times a whole number is still a whole number, it follows that $n$ must also be divisible by $36$. However, what I think I have just shown is:

$$text{A number }n space text{is divisble by} space 144 implies n space text{is divisible by} space 36 space (1)$$

Is that the same as saying: $$text{For a number to be divisible by 144 it has to be divisible by 36} space (2)$$

In other words, are statements (1) and (2) equivalent?

Yes, it's the same. $Aimplies B$ is equivalent to "if we have $A$, we must have $B$".

And your proof looks fine. Good job.

If I were to offer some constructive criticism, it would be of the general kind: In number theory, even though we call the property "divisible", we usually avoid division whenever possible. Of the four basic arithmetic operations it is the only one which makes integers into non-integers. And number theory is all about integers.

Therefore, "$n$ is divisible by $144$", or "$144$ divides $n$" as it's also called, is defined a bit backwards:

There is an integer $k$ such that $n=144k$

(This is defined for any number in place of $144$, except $0$.)

Using that definition, your proof becomes something like this:

If $n$ is divisible by $144$, then there is an integer $k$ such that $n=144k$. This gives
$$
n=144k=(36cdot4)k=36(4k)
$$
Since $4k$ is an integer, this means $n$ is also divisible by $36$.

Yes that's correct or simply note that

$$n=144cdot k= 36cdot (4cdot k)$$

but $n=36$ is not divisible by $144$.

The $implies$ symbol is defined as follows:

If $p implies q$ then if $p$ is true, then $q$ must also be true. So when you say $144 mid n implies 36 mid n$ it's the same thing as saying that if $144 mid n$, then it must also be true that $36 mid n$.

There are often multiple approaches to proofs. Is usually good to be familiar with multiple techniques.

You have a very good approach. Parsimonious and references only the particular entities at hand.

Some times, for the sake of illustrating the use of additional concepts, you might want to deviate from parsimony.

In that spirit, here's an additional proof.

According to The Fundamental Theorem of Arithmetic, if something is divisible by 144, then it is divisible by at least the same primes raised to the powers you need to yield 144. In other words, $144=2^43^2$. For something to be divisible by 144, the primes 2 and 3 must appear in its prime factorization. The powers of 2 and 3 must be at least 4 and 2, respectively. Now $36=2^23^2$. So any number who's prime factorization incluedes the primes 2 and 3, and has them raised at least to the power of 2, then it is also divisible by 36. If something is divisible by 144, we are guaranteed that 2 and 3 appear in its prime factorization. We area also guaranteed that the exponents on 2 and 3 are 4 and 2 respectively. So divisibility by 144 implies divisibility by 36 since the exponents satisfy the established criteria.

The prime factorization of 144 is 2 * 2 * 2 * 2 * 3 * 3.
The prime factorization of 36 is 2 * 2 * 3 * 3.

If X is divisible by Y, then X's prime factorization contains all of the factors in Y's prime factorization.

Since 144's prime factorization contains all of the factors in 36's prime factorization, 144 is divisible by 36.

The prime factorization of any number that is divisible by 144 contains all of the prime factors of 144, which contains all of the prime factors of 36. Hence any number that is divisible by 144 has a prime factorization that contains all the prime factors of 36, and therefore is divisible by 36.

If $n$ is a multiple of $144$, it must automatically be a multiple of any divisor $d$ of $144$. The prime factorization of $144$ is $(2^4)(3^2)$, and so $36 = (2^2)(3^2)$ must be a divisor of $144$ and hence of $n$.