tspan=[ti tf];
[time,Y] = ode45(f,tspan./tp,[sqrt(p);sqrt(p);0;0;0.01]);
When you use a vector of length 2 for the tspan, ode45 generates time outputs whenever it feels like it, so time will be a vector whose length is not easily predictable ahead of time. The Y output will have as many rows as there are entries in time and will have as many columns as there are entries in the initial conditions.
U(i) = -a.*(Y(:,5) - Y(:,4)).*O(i) + n.*((Y(:,1)./Y(:,2)) - (Y(:,2)./Y(:,1)))*sin(O(i));
The left hand side, U(i), is a scalar location.
On the right hand side, you use Y(:,1), Y(:,2), Y(:,4), and Y(:,5), each of which is a column vector with as many entries as the number of time values that were returned by ode45(). So the right hand side is a column vector of results, and you are trying to fit the column vector into a scalar location.
