Right versus left derivative by increasing one-sided derivatives

We can prove the stronger statement $$lim_{xto y^+}f'_-(x)=f'_+(y)$$

By the Monotone Convergence Theorem $lim_{xto y^+}f'_-(x)$ exists. Call that limit $A$.

Now, let $epsilon>0$ be given and choose a value of $delta>0$ such that both of these are true:
$$xin(y,y+delta] implies f'_-(x)in left[A,A+frac{epsilon}2 right]$$ and $$left|frac{f(y+delta)-f(y)}{delta}-f'_+(y)right|le frac{epsilon}2$$ That is possible because of the definitions of the left hand derivative and the limit.

Similar to the answer from @MartinR, define the function $g(x)=f(x)-frac{f(y+delta)-f(y)}{delta}(x-y)$ so that $g(y)=g(y+delta)$ and both $g'_-(x)=f'_-(x)-frac{f(y+delta)-f(y)}{delta}$ and $g'_+(x)=f'_+(x)-frac{f(y+delta)-f(y)}{delta}$ are increasing.

Claim 1. $g'_+(y) le 0$
This follows because if it were not true, then $g'_+(x)$ would have to be positive for all $xin (y,y+delta)$. That would imply $g$ is increasing (proof here) in that interval and it would be impossible for $g(y+delta)$ to equal $g(y)$.

Claim 2. $g'_-(y+delta) ge 0$
Same argument as Claim 1. If it were not true, then $g'_-$ would have to be negative in the whole interval which would make it impossible for the function to have the same value at both ends of the interval.

Now,
$$g'_-(y+delta)ge0$$ $$f'_-(y+delta)-frac{f(y+delta)-f(y)}{delta}ge0$$ $$f'_-(y+delta) ge frac{f(y+delta)-f(y)}{delta} ge f'_+(y)-frac{epsilon}2$$ We also know that $f'_-(y+delta)in left[A,A+frac{epsilon}2 right]$

Thus, $$A ge f'_-(y+delta)-frac{epsilon}2 ge f'_+(y)-epsilon label{eq1}tag{1}$$

On the other hand,
$$g'_-(y)le0$$ $$f'_-(y)-frac{f(y+delta)-f(y)}{delta}le0$$ $$f'_-(y) le frac{f(y+delta)-f(y)}{delta} le f'_+(y)+frac{epsilon}2$$

So, $$A le f'_-(y+delta) le f'_+(y)+frac{epsilon}2 label{eq2}tag{2}$$

Combining the two inequalities (1) and (2), since $epsilon$ was arbitrary, we have $A=f'_+(y)$.

To answer the original question, if $z>y$ then by the monotonicity assumption $f'_-(z)>lim_{xto y^+}f'_-(x)=f'_+(y)$