Correct Option: C

Given
V₊ = 5 V
V_– = V_E = 5 V (due to virtual ground)

Ie =	5	= 50 mA
	100

since ideal op-amp draws no current, so

Iz =	15 – V+	, Ie = Ib + Ic
	47 kΩ

=	15 – 5	, or Ic = Ie – Ib
	47 kΩ

= 0·213 mA , or βI_b + I_b = I_e

Ie =	Vo	, or Ib =	Ie	⇒ Ic =	β·Ie
	100		1 + β		(1 + β)

= 50 mA
The total current supplied by the 15 V source

= Iz + Ic = Iz +	β·Ie
	(1 + β)

=		0·213 +	60·(50)		mA = 49.39 mA
			61

Hence alternative (C) is the correct choice.