(1)斜率k=tan120°=-√3,所以直线PA的方程是y-2=-√3(x-1)令y=0,得 x=1+2√3/3,所以P(1+2√3/3,0);令x=0,得,y=2+√3,所以P(0,2+√3).(2)x^2+y^2-x-y+k=0(x-1/2)^2+(y-1/2)^2=-k+1/2∴-k+1/2>0解得:k<1/2
