Integration in a non-standard way (a nonsense)?
$\color{blue}{\large{\underline{\mathrm{Task}}}}$
To prove that if $f :(0,\infty) \to \mathbb R$ is a function which satisfies $f(1) = -1$ and for every $x,y>0$, $f(y)-f(x) = \int_{x}^y \frac{dt}{t^2}$, then $f(x) = \frac{-1}{x}$ for all $x$. We use monotonicity of the integral and the change of variables formula, but do not use FTC.
$\color{green}{\large{\underline{\mathrm{Idea}}}}$
Create a functional equation for $f$ using a change of variables.
Solve the functional equation.
$\color{orange}{\large{\underline{\mathrm{The \ functional \ equation}}}}$
Let $x,y,b>0$ be arbitrary. Then, consider $f(y)-f(x) = \int_x^y \frac{dt}{t^2}$. Perform the change of variables $u=bt$, then $du = bdt$. This results in : $$ f(y)-f(x) = \int_x^y \frac{dt}{t^2} = \int_{bx}^{by} \frac{b^2}{u^2}\frac{du}{b} = b\int_{bx}^{by} \frac{du}{u^2} = b(f(by)-f(bx)) $$
which leads to the equation : for all $b,x,y>0$, we have : $$ f(y)-f(x) = b(f(by)-f(bx)) $$
$\color{grey}{\large{\underline{\mathrm{Solving\ the\ equation}}}}$
As Professor Vector shows here, there exists a constant $a$ such that $xf(x)=ax-a-1$ for all $x>0$. Note that no tools from calculus were used. That is, $f(x) = a - \frac{a-1}{x}$.
But then, $\lim_{x \to \infty} f(x) = a$. Therefore, $\lim_{x \to \infty} (f(x) - f(1)) = a+1$ i.e. $a = \int_{1}^\infty \frac{dt}{t^2} - 1$. We expect $\int_1^\infty \frac{dt}{t^2} = 1$.
But how do we show that? The most obvious substitution $u = \frac {-1}t$ is barred since we are not allowed to use the fact that this is the antiderivative of $\frac{1}{t^2}$, which we are trying to prove! Furthermore, if we attempt to express this as a Riemann sum and take the limit, we could have done the same for general $n$ instead of $\infty$ and landed with the expression of $\frac{-1}{x}$ earlier.
$\color{Red}{\underline{\large{\mathrm{Conclusion}}}}$
While our approach eventually turned into a roundabout, we showed that $f(x) = a - \frac{a-1}{x}$ for all $x$, where $a = \int_1^{\infty} \frac{dt}{t^2}$, a quantity that unfortunately cannot be calculated without going back to the theory of the integral itself.
However, our sojourn lead us to a few important observations about such $f$, which is all we can do without the power formula.
$0<\lim_{x\to \infty} \frac {dt}{t^2} = a < \infty$. The assertion that the integral is finite is quite surprising to those who have not seen the power law.
$f(x)$ decays exactly at the rate $\frac 1x$ as $x \to \infty$ i.e. $\lim_{x \to \infty} \frac{f(x)-a}{x} = a-1$. This is because $f$ is a strictly increasing function, so we must have $a-1<0$ i.e. $a<1$ so $a-1 \neq 0$.
It's best to use definite integrals; this not only distinguishes certain variables your reasoning risks conflating (though you've done your best to explain why the steps are legal), but also makes it shorter. Define $f(x):=\int_\infty^x\frac{dt}{t^2}$ so $f(ax)=\int_\infty^{ax}\frac{dt}{t^2}=\int_\infty^x\frac{du}{au^2}=\frac{f(x)}{a}$; in particular, $f(a)=\frac{f(1)}{a}$. For $x>0$, integrate by parts with $u:=t,\,v:=f(t)$ so$$\begin{align}\ln x&=\int_1^x\tfrac{dt}{t}\\&=[tf(t)]_1^x-\int_1^xf(t)dt\\&=\underbrace{xf(x)-f(1)}_0-\int_1^x\tfrac{f(1)}{t}dt\\&=-f(1)\ln x\\\implies f(1)&=-1.\end{align}$$