Consider the following nuclear reactions- 92 238 M - y x N -2 2 4 He y x N - B A L -2- -the number of neutrons present in the element - L- is-

The correct option is B 144 α decay #160; #160; #160; #160; #160; #160; _ Z ^ A X α #160; _ Z 2 ^ A 4 Y β dec ...

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Consider the ...

Question

Consider the following nuclear reactions:
$_{92}^{238} M ⟶$ $_{y}^{x} N + 2_{2}^{4} H e$
$_{y}^{x} N ⟶$ $_{B}^{A} L + 2 β^{+}$
the number of neutrons present in the element ' $L$ ' is:

142

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144

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140

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146

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_{92}^{238} M \to_{Y}^{X} N + 2_{2}^{4} He;_{Y}^{X} N \to_{B}^{A} L + 2 β^{+}

_{92}^{238} M \to_{y}^{x} N +_{2}^{4} H e

_{y}^{y} N \to_{B}^{A} L + 2 β^{+}

L

_{92}^{238} M \to_{y}^{x} N +_{2}^{4} H e

_{Y}^{X} N \to_{B}^{A} L + 2 β^{+}

_{92}^{238} M ⟶_{Y}^{X} N +_{2}^{4} He

_{Y}^{X} N ⟶_{B}^{A} L + 2 β^{+}

_{92} U^{235} +_{0} n^{1} ⟶_{56} {Ba}^{140} +_{36} {Ke}^{93} + 3_{0} n^{1}

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