我看了書有一段不是很了解 他說nucleon的total spin J = 1/2 而不管是uud還是udd u和d都有J = 1/2 我想問的第一個問題是從nucleon的total spin J = 1/2 可以因此知道uud或是udd是能量最低的束縛態嗎? 這兩種波函數是否symmetric還是anti-symmetric? 怎麼看出來的? 另外書本又提到Δ++ Its spin, J = 3/2, is obtained by combing three identical J = 1/2 u quarks in their "ground state". That is, the quark scheme forces us to combine three identical fermions u in a "completely symmetric ground state" uuu in order to accommodate the known properties of the Δ-particle. Such a state is of course forbidden by Fermi statistics. 我不懂為什麼從uuu就知道是completely symmetric ground state? 對稱波函數能量不是都比較低嗎? 又存在有不完全對稱或反對稱這種組合嗎? 我猜測書中的意思是說J = 3/2 = 1/2 + 1/2 + 1/2 所以態是(up, up, up)所以是對稱?這樣對嗎? 所以如果按照Fermi-Dirac統計 qqq的組合是不可能發生的 是嗎? 謝謝回答 -- ※ 發信站: 批踢踢實業坊(ptt.cc) ◆ From: 128.220.147.133